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NL2028260B1 - High-Index Borate Glasses - Google Patents

High-Index Borate Glasses Download PDF

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Publication number
NL2028260B1
NL2028260B1 NL2028260A NL2028260A NL2028260B1 NL 2028260 B1 NL2028260 B1 NL 2028260B1 NL 2028260 A NL2028260 A NL 2028260A NL 2028260 A NL2028260 A NL 2028260A NL 2028260 B1 NL2028260 B1 NL 2028260B1
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Netherlands
Prior art keywords
equal
mol
less
glass
composition
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NL2028260A
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Dutch (nl)
Inventor
Robert Sarafian Adam
Marie Joseph Lepicard Antoine
Ma Lina
I Priven Alexander
Luo Jian
Original Assignee
Corning Inc
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Application filed by Corning Inc filed Critical Corning Inc
Priority to US17/683,527 priority Critical patent/US20220306517A1/en
Priority to PCT/US2022/019420 priority patent/WO2022197495A1/en
Priority to JP2023555781A priority patent/JP2024511745A/en
Priority to EP22162611.2A priority patent/EP4059901B1/en
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Publication of NL2028260B1 publication Critical patent/NL2028260B1/en

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    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C3/00Glass compositions
    • C03C3/04Glass compositions containing silica
    • C03C3/062Glass compositions containing silica with less than 40% silica by weight
    • C03C3/064Glass compositions containing silica with less than 40% silica by weight containing boron
    • C03C3/068Glass compositions containing silica with less than 40% silica by weight containing boron containing rare earths
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C3/00Glass compositions
    • C03C3/12Silica-free oxide glass compositions
    • C03C3/14Silica-free oxide glass compositions containing boron
    • C03C3/15Silica-free oxide glass compositions containing boron containing rare earths
    • C03C3/155Silica-free oxide glass compositions containing boron containing rare earths containing zirconium, titanium, tantalum or niobium

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  • Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Materials Engineering (AREA)
  • Organic Chemistry (AREA)
  • Glass Compositions (AREA)

Abstract

Glass compositions include boron oxide (3203), lanthanum oxide (La203), titania (TiOz) and niobia (szOs) as essential components and may optionally include silica (SiOz), tungsten oxide (W03), zirconia (ZrOz), yttria (Y203), bismuth oxide (Bleg), barium oxide (BaO), T602 and other components. The glasses may be characterized by high refractive index at 587.56 nm at comparably low liquidus temperature.

Description

High-Index Borate Glasses
FIELD [0001} The present disclosure generally relates to borate and silicoborate glasses having a high refractive index and low density.
BACKGROUND
[0002] Glass is used in a variety of optical devices, examples of which include augmented reality devices, virtual reality devices, mixed reality devices, eye wear, etc. Desirable properties for this type of glass often include a high refractive index and a low density. Additional desirable properties may include high transmission in the visible and near-ultraviolet {near-UV) range of the electromagnetic spectrum and/or low optical dispersion. it can be challenging to find glasses having the desired combination of these properties and which can be formed from compositions having good glass-forming ability. For example, generally speaking, as the refractive index of a glass increases, the density also tends to increase. Species such as TiO, and Nb,Os are often added to increase the refractive index of a glass without increasing the density of the glass.
However, these materials often absorb blue and UV light, which can undesirably decrease the transmittance of light in this region of the spectrum by the glass. Often, attempts to increase the refractive index of a glass while maintaining a low density, and without decreasing transmittance in the blue and UV region of the spectrum, can result in a decrease in the glass-forming ability of the material. For example, crystallization and/or liquid-liquid phase separation can occur during cooling of the glass melt at cooling rates that are generally acceptable in the industry. Typically, the decrease in glass-forming ability appears as the amount of certain species, such as ZrO,, Y203, Sc,03, BeO, etc. increases.
[0003] Low density, high refractive index glasses often belong to one of two types of chemical systems, based on the glass formers used: {a} silicoborate or borosilicate glasses in which SiO, and/or B;0: are used as the main glass formers and (b} phosphate glasses in which P,O; is used as a main glass former, Glasses which rely on other oxides as main glass formers, such as GeQ,, Te0,, Bi»03, and V,0s, can be challenging to use due to cost, glass-forming ability, optical properties, and/or production requirements.
[0004] Phosphate glasses can be characterized by a high refractive index and low density, however, phosphate glasses can be challenging to produce due to volatilization of P,0s from the melts and/or risks of platinum incompatibility. In addition, phosphate glasses are often highly colored and may require an extra bleaching step to provide a glass having the desired transmittance characteristic. Furthermore, phosphate glasses exhibiting a high refractive index also tend to have an increase in optical dispersion.
[0005] Silicoborate and borate glasses are typically easier to produce and can exhibit a high transmittance without a bleaching step. However, silicoborate and borosilicate glasses typically exhibit an increase in density at increasing refractive indices, compared to phosphate glasses.
[0006] In view of these considerations, there is a need for borate and silicoborate glasses having a high refractive index, a low density, and a high transmittance to blue light.
SUMMARY
[0007] According to an embodiment of the present disclosure, a glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 3.0 mol.% and less than or equal to 35.0 mol.% WO:3, greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.% TiO,, greater than or equal to 0.3 mol.% and less than or equal to
50.0 mol.% Nb, Os, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi, 0s, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% MoQ;, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V;0;, greater than or equal to 0.0 at.% and less than or equal to 5.0 at. % F, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Cl, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, greater than or equal to 0.6 mol.% and less than or equal to 60.0 mol.% TiO; + Nb,;05 and may optionally contain one or more components selected from Al;03, B;03, BaO, CaO, Gd;03, Ge0,, KO, La;03, Li;O, MgO, Na;0, P,0s, Si0,, SrO, Ta,0s, Y203, Yb;03, ZnO and ZrO;, wherein the glass has a liquidus temperature, Tu, that is greater than or equal to 850 °C and less than or equal to 1350 °C, and the glass satisfies the conditions: 1.92 <P, < 2.08 and P, - {1.437 + 0.0005 * Ti) >
0.00, where P, is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (11): P, = -0.0051086 * Al,0; - 0.0049247 * B,03 - 0.00034289 * BaO + 0.0086552 * Bi,0; -
0.0014511 * CaO + 0,0047429 * Gd,0; - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La,0; - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb,Os -
0.0075074 * P,O; + 0.0015814 * PbO - 0.0043959 * SiO; - 0.00086373 * SrO + 0.0045915 * uo Taz0s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +
0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, where a symbol “*” means multiplication.
[0008] According to another embodiment of the present disclosure, a glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 7.5 mol.% and less than or equal to 28.0 mol.% TiO,, greater than or equal to 1.0 mol.%
and less than or equal to 40.0 mol.% B,0;, greater than or equal to 0.3 mol.% and less than or equal to 19.5 mol.% Nb,Os, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% WO:3, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% La:0;, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Gd;0;3, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi203, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 13.5 mol.% Si0,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Al, 0s, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThQ,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% GeO,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Ta, 0s, greater than or equal to 0.0 mol.% and less than or equal to
5.0 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V;0,, greater than or equal to 0.0 at.% and less than or equal to 5.0 at.% F, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Ci, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, greater than or equal to 10.0 mol.% RE;O:3 + ZrO; + TiO; + Nb,05 + WO:3, less than or equal to 40.0 mol.% WO; + TIO, less than or equal to 35.0 mol.% TiO, + Nb, 0s, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO and may optionally contain P,0s;, wherein the composition of the components satisfies the conditions: TiO, - SiO; [mol.%] = 7.5 and B,0; + SiO, - P,O; [mol.%] >
0.00, and the glass satisfies the conditions: 1.9 <P, < 2.1 and Pier - {0.269 - 0.12 * T) > 0.00, where P. is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula {ll}: P, =-0.0051086 * Al;03 - 0.0049247 * 8,0; - 0.00034289 * BaO + 0,0086552 * Bi203 -
0.0014511 * CaO + 0.0047429 * Gd,0; - 0.0033126 * GeO; - 0.0049544 * K,0 + 0.0045475 * La203 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb,0s -
0.0075074 * P,O; + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uw Ta20s5 - 0.0015272 * TeO; + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,03 +
0.0048156 * Yb,0; - 0.00047962 * ZnO + 0,00090073 * ZrO, + 1.955, P. is a refraction parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (IV):
Prt (cm’/g) = 0.000087034 * SiO, - 0.00012035 * 8,0; - 0.0012566 * La,0; + 0.0011411 * TiO; - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb,Os - 0.00023383 * MgO -
0.00086501 * BaO - 0.0004486 * WO; - 0.0014114 * Gd,0; - 0.00023872 * Y,0; -
0.00031575 * Ta,0s + 0.00011894 * Li;O + 0.00027178 * Al,05 - 0.000099802 * Na20 -
0.00028391 * GeO, - 0.00030531 * SrO - 0.00072061 * 8i,0; - 0.0010964 * Yb,0; +
0.00022839 * K,0 - 0.00086617 * PbO + 0.00027129 * TeD, + 0.198, T; is a value of transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula (1): Ti = (La;0;3 + Gd; 03 + ZrO; + WO3)} / (La203 + Gd, 03 + ZrO; + WO3 + TiO, + Nby0s), (1) where RE,Qj; is a total sum of rare earth metal oxides in trivalent equivalent, R,0 is a total sum of monovalent metal oxides, RO is a total sum of divalent metal oxides, and an asterisk (*) means multiplication.
[0009] According to one more embodiment of the present disclosure, a glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.% WO;, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% ZrQ,, greater than or equal to 0.0 mol.% and less than or equal to 40.0 mol.% B;0;3, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% La, 0, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% Bi, 0s, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% ZnO, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Ta,0;, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% AL O,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol. % TeQ,, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% V,0s, greater than or equal to 10.0 mol.% RE,O; + ZrO, + TiO; + Nb,0s + WO;3, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% TiO; + Nb,0s, greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO; + GeO, and may optionally contain one or more components selected from P;0s, BaO, CaO, KO, Li,0, MgO, Na20, PbO and SrO, wherein the composition of the components satisfies the condition: B203 + SiO; - P,Os [mol.%] > 0.50, and the glass satisfies the conditions: 500 < Py, < 700, Py < 6.0 and P,, - (1.571 + 0.083 * Py} > 0.00, where P, is a refractive index parameter, calculated from the glass composition in terms of mol.% according to the Formula (If):
P,=-0.0051086 * Al,03 -0,0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,03 -
0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO; - 0.0049544 * KO + 0.0045475 * La203 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na20 + 0.0071165 * Nb,Qs -
0.0075074 * P,05 + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta;0s - 0.0015272 * TeO, + 0.0020281 * TiO; + 0.0012709 * WO; + 0.0025878 * Y203 +
0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, Py is a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (iit): Pa {g/cm’} = 4.95 - 0.036300 * Al,O; - 0.028364 * B,03 + 0.010786 * BaO + 0.077280 * Bi203 - 0.0047086 * CaO + 0.060989 * Er,O3 + 0.067356 * Gd; 0; - 0.024973 * K,O + 0.050388 * La,05 - 0.015411 * Li;O - 0.014318 * Na,0 - 0.0016283 * Nb,0s + 0.078354 * Nd;03-
0.045034 * P,O, + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i + 0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yb,0, + 0.0086588 * ZnO + 0.0043754 * ZrO, Pre is a T; parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (V): Pig (°C)= 595.358 - 0.63217 * B,03 - 0.46552 * SiO, + 1.1849 * TiO; + 0.59610 * Nb,0s -
1.6293 * WO, + 1.3877 * ZrO, + 4.4090 * La,0; + 4.1695 * Y,0, - 5.0756 * Bi,03 + 0.55630 * Ca0 - 5.3892 * PhO - 4.2774 * TeO, + 1.8497 * Al,O; - 0.40659 * GeO, - 1.7011 * ZnO - )
4.1520 * Li,0 + 3.0777 * Gd,0;, 5 Where RE;0; is a total sum of rare earth metal oxides in trivalent equivalent, and an asterisk (*) means multiplication.
[0010] These and other aspects, objects, and features of the present disclosure will be understood and appreciated by those skilled in the art upon studying the following specification, claims, and appended drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] FIG. 1 is a plot illustrating the relationship between the transmittance index T, calculated according to formula (1) and the minimum wavelength corresponding to a total transmittance of at least 70% for a glass sample having a thickness of 10 mm (As) for some comparative glasses.
[0012] FIG. 2 is a plot illustrating the relationship between the refractive index ng and the refractive index parameter P, calculated by formula (ll) for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0013] FIG. 3 is a plot illustrating the relationship between the density at room temperature dst and the density parameter P, calculated by formula (Hl) for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0014] FIG. 4 is a plot illustrating the relationship between the refraction {n4-1}/dg7 and the refraction parameter Per calculated by formula (IV) for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0015] FIG. 5 is a plot illustrating the relationship between the glass transition temperature T, and the T4 parameter Pr, calculated by formula {V) for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0016] FIG. 6 is a plot of an exemplary cooling schedule according to a "15 min test” condition and a "2.5 min test" condition for some Exemplary Glasses according to an embodiment of the present disclosure.
[0017] FIG. 7 is a plot illustrating the relationship between the liquidus temperature Ti, and the refractive index parameter P, for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0018] FIG. 8 is a plot illustrating the relationship between the liquidus temperature Ty, and the refractive index ng for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0019] FIG. 9 is a plot illustrating the relationship between the transmittance index T; and the refraction parameter P, for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0020] FIG. 10 is a plot illustrating the relationship between the transmittance index T; and the refractive index to density ratio {"refraction”) {ng-1)/dg; for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0021] FIG. 11 is a plot illustrating the relationship between the density parameter Py and the refractive index parameter P, for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0022] FIG. 12 is a plot illustrating the relationship between the density at room temperature der and the refractive index at 587.56 nm nq for some Comparative Glasses and some Exemplary Glasses according to an embodiment of the present disclosure.
[0023] FIG. 13 illustrates the transmittance spectra for an exemplary glass according to an embodiment of the present disclosure.
DETAILED DESCRIPTION
[0024] In the following detailed description, for purposes of explanation and not limitation, example embodiments disclosing specific details are set forth to provide a thorough understanding of various principles of the present disclosure. However, it will be apparent to one having ordinary skill in the art, having had the benefit of the present disclosure, that the present disclosure may be practiced in other embodiments that depart from the specific details disclosed herein. Moreover, descriptions of well-known devices, methods and materials may be omitted so as not to obscure the description of various principles of the present disclosure. Finally, wherever applicable, like reference numerals refer to like elements.
[0025] Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps, or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is in no way intended that an order be inferred, in any respect. This holds for any possible non-express basis for interpretation, including, without limitation, matters of logic with respect to arrangement of steps or operational flow; plain meaning derived from grammatical organization or punctuation; the number or type of embodiments described in the specification.
[0026] As used herein, the term "and/or," when used in a list of two or more items, means that any one of the listed items can be employed by itself, or any combination of two or more of the listed items can be employed. For example, if a composition is described as containing components A, B, and/or C, the composition can contain A alone; B alone; C alone; A and B in combination; A and C in combination; B and C in combination; or A, B, and C in combination.
[0027] Modifications of the disclosure will occur to those skilled in the art and to those who make or use the disclosure. Therefore, it is understood that the embodiments shown in the drawings and described above are merely for illustrative purposes and not intended to limit the scope of the disclosure, which is defined by the following claims, as interpreted according to the principles of patent law, including the doctrine of equivalents.
[0028] As used herein, the term "about" means that amounts, sizes, formulations, parameters, and other quantities and characteristics are not and need not be exact, but may be approximate and/or larger or smaller, as desired, reflecting tolerances, conversion factors, rounding off, measurement error and the like, and other factors known to those skilled in the art. When the term "about" is used in describing a value or an end-point of a range, the disclosure should be understood to include the specific value or end-point referred to. Whether or not a numerical value or end-point of a range in the specification recites "about," the numerical value or end- point of a range is intended to include two embodiments: one modified by "about," and one not modified by "about." it will be further understood that the end-points of each of the ranges are significant both in relation to the other end-point, and independently of the other end-point.
[0029] The term "formed from" can mean one or more of comprises, consists essentially of, or consists of. For example, a component that is formed from a particular material can comprise the particular material, consist essentially of the particular material, or consist of the particular material.
[0030] The terms "free" and "substantially free" are used interchangeably herein to refer to an amount and/or an absence of a particular component in a glass composition that is not intentionally added to the glass composition. It is understood that the glass composition may contain traces of a particular constituent component as a contaminant or a tramp in an amount of less than 0.10 mol%.
[0031] As used herein, the term "tramp", when used to describe a particular constituent component in a glass composition, refers to a constituent component that is not intentionally added to the glass composition and is present in an amount of less than 0.05 mol%. Tramp components may be unintentionally added to the glass composition as an impurity in another constituent component and/or through migration of the tramp component into the composition during processing of the glass composition.
[0032] The symbol ” * " means multiplication when used in any formula herein.
[0033] Unless otherwise specified, the term “glass” is used to refer to a glass made from a glass composition disclosed herein.
[0034] The term "glass former" is used herein to refer to a component that, being solely present in the glass composition (i.e, without other components, except for tramps), is able to form a glass when cooling the melt at a rate of not greater than about 200 °C/min to about 300 °C/min.
[0035] The term "modifier", as used herein, refers to the oxides of monovalent or divalent metals, i.e., R20 or RO, where "R" stands for a cation. Modifiers can be added to a glass composition to change the atomic structure of the melt and the resulting glass. In some embodiments, the modifier may change the coordination numbers of cations present in the glass formers (e.g., boron in B203}, which may result in forming a more polymerized atomic network and, as a result, may provide better glass formation.
[0036] As used herein, the term "RO" refers to a total content of divalent metal oxides, the term "R2O" refers to a total content of monovalent metal oxides, and the term "Alk;O" refers to a total content of alkali metal oxides. The term R,0 encompasses alkali metal oxides {Alk,0), in addition to other monovalent metal oxides, such as Ag,0, T1,0, and Hg, 0, for example. As discussed below, in the present disclosure, a rare earth metal oxide is referred to herein by its normalized formula (RE;O3) in which the rare earth metal has the redox state "+3," and thus rare earth metal oxides are not encompassed by the term RO.
[0037] As used herein, the term "rare earth metals” refers to the metals listed in the Lanthanide Series of the IUPAC Periodic Table, plus yttrium and scandium. As used herein, the term "rare earth metal oxides," is used to refer to the oxides of rare earth metals in different redox states, such as "+3" for lanthanum in La20;, "+4" for cerium in CeO,, "+2" for europium in EuO, etc. In general, the redox states of rare earth metals in oxide glasses may vary and, in particular, the redox state may change during melting, based on the batch composition and/or the redox conditions in the furnace where the glass is melted and/or heat-treated (e.g., annealed). Unless otherwise specified, a rare earth metal oxide is referred to herein by its normalized formula in which the rare earth metal has the redox state "+3." Accordingly, in the case in which a rare earth metal having a redox state other than "+3" is added to the glass composition batch, the glass compositions are recalculated by adding or removing some oxygen to maintain the stoichiometry. For example, when CeO, (with cerium in redox state "+4") is used as a batch component, the resulting as-batched composition is recalculated assuming that two moles of Ce0; is equivalent to one mole of Ce,0;, and the resulting as-batched composition is expressed in terms of Ce; 0s. As used herein, the term "RE,,0," is used to refer to the total content of rare earth metal oxides in all redox states present in the as-batched composition, and the term "RE,0;" is used to refer to the total content of rare earth metal oxides in the as-batched composition when recalculated to "+3" redox state. The term “RE,0;” is also specified herein as "trivalent equivalent".
[0038] Unless otherwise specified, all compositions are expressed in terms of as-batched mole percent {(mol%). References to “composition” or “glass composition” thus refer to composition expressed in terms of mol.% in the as-batched state. As will be understood by those having ordinary skill in the art, various melt constituents (e.g., fluorine, alkali metals, boron, etc.) may be subject to different levels of volatilization (e.g., as a function of vapor pressure, melt time and/or melt temperature} during melting of the constituents. As such, the term "about," in relation to such constituents, is intended to encompass values within about 0.2 mol% when measuring final articles as compared to the as-batched compositions provided herein. With the forgoing in mind, substantial compositional equivalence between final articles and as-batched compositions is expected. In some embodiments, where indicated, the compositions may be expressed in terms of as-batched percent by weight of oxides {wt%).
[0039] Oxides and other constituents of the glass are referred to as “components”. Expressions combining components with the mathematical symbols “+” and “-“ refer to sums and differences, respectively, of the as-batched composition of the components expressed in mol.%. For example,
the expression “SiO; + GeO,“ or the expression “SiO; + GeO, [mol.%]” means the sum of the components SiO; and GeO,, each expressed in mol.%, in the as-batched composition. In another example, the expression “B;03+5i0,-P,05” or the expression “B,;0345i0,-P,05 [mol.%]” means the sum of the components B,034Si0; less the component P,0s, each expressed in mol.%, in the as- batched composition. If the expression is preceded by an amount, the amount refers to the combined as-batched compositions of the components listed in the expression. For example, the expression “4.8 mol.% SiO, + GeO,” means that the combined amount of the components SiO, and GeO; in the as-batched composition is 4.8 mol.% and the expression “less than or equal to 4.8 mol.% SiO, + GeO,” means that the combined amount of the components of Si0, and GeQ, in the as-batched composition is less than or equal to 4.8 mol. %.
[0040] in the case when fluorine or other halogen (chlorine, bromine, and/or iodine) is added to or is present in an oxide glass, the molecular representation of the resulting as-batched composition may be expressed in different ways. In the present disclosure, the content of a halogen as a component, when present, is expressed in terms of atomic percent {at.%}, which is determined based on the fraction of the halogen in a total sum of all atoms in the as-batched composition multiplied by a factor of 100. [0041} In the present disclosure, the following method of representation of fluorine-containing compositions and concentration ranges is used. The concentration limits for all oxides (e.g. SiO;, B;03, Na,0, etc.) are presented under the assumption that the respective cations (such as, for example, silicon [Sis], boron [Bs], sodium [Na], etc.) are initially presented in the form of the corresponding oxides. When fluorine is present as a sole halogen, for the purposes of calculating the concentration of components of the as-batched composition, some part of the oxygen in the oxide is equivalently replaced with fluorine (i.e. one atom of oxygen is replaced with two atoms of fluorine). The fluorine is assumed to be present in the form of silicon fluoride {SiF,); accordingly, the total sum of all oxides plus SiF, is assumed to be 100 mole percent or 100 weight percent in all compositions. Analogous treatment of other halogens as sole halogens or combinations of halogens applies.
[0042] The measured density values for the glasses reported herein were measured at room temperature in units of g/cm? by the Archimedes method in water with an uncertainty of 0.001 g/cm’. As used herein, density measurements at room temperature (specified as dar) are indicated as being measured at 20 °C or 25 °C, and encompass measurements obtained at temperatures that may range from 20 °C to 25 °C. It is understood that room temperature may vary between about 20 °C to about 25 °C, however, for the purposes of the present disclosure, the variation in density within the temperature range of 20 °C to 25 °C is expected to be less than the uncertainty of 0.001 g/cm’, and thus is not expected to impact the room temperature density measurements reported herein.
[0043] As used herein, the term "refraction" refers to the relationship of the refractive index to the density according to the ratio: (ns-1)/dgy, where the refractive index ng is measured at 587.56 nm and the density dr is measured in g/cm’ at room temperature. The ratio (n4-1}/dgr, or refraction, may characterize the relationship between the refractive index n4 and the density dr.
The higher the refraction value, the higher the refractive index is at a given density.
[0044] As used herein, good glass forming ability refers to a resistance of the melt to devitrification as the melt cools. Glass forming ability can be measured by determining the critical cooling rate of the melt. The terms "critical cooling rate” or "v,," are used herein to refer to the minimum cooling rate at which a melt of a given composition forms a glass free of crystals visible under an optical microscope under magnification from 100x to 500x. The critical cooling rate can be used to measure the glass-forming ability of a composition, i.e., the ability of the melt of a given glass composition to form glass when cooling. Generally speaking, the lower the critical cooling rate, the better the glass-forming ability.
[0045] The term "liquidus temperature” is used herein to refer to a temperature above which the glass composition is completely liquid with no crystallization of constituent components of the glass. The liquidus temperature values reported herein were obtained by measuring samples using either DSC or by isothermal hold of samples wrapped in platinum foil or in thermal gradient test in a platinum boat. For samples measured using DSC, powdered samples were heated at 10 K/min to 1250°C. The end of the endothermal event corresponding to the melting of crystals was taken as the liquidus temperature. For the second technique (isothermal hold), a glass block (about 1 cm?) was put in platinum foil and placed in a furnace at a given temperature for 4 hours to 24 hours. The glass block was then observed under an optical microscope to check for crystals.
For the third technigue (thermal gradient test}, about 10 g of glass cullet was placed in a thin platinum boat and placed in a furnace at a given temperature for 4 hours to 24 hours. The glass block was then observed by a naked eye to check for crystals. For some of Exemplary Glasses of the present disclosure, several different tests were used to determine the liquidus temperature, and they provided essentially the same results.
[0046] As used herein, unless otherwise specified, the term “internal transmittance” or Tm is used to refer to the transmittance through a glass sample that is corrected for Fresnel losses. The term “total transmittance” or T is used to refer to transmittance values for which Fresnel losses are not accounted for. Total transmittance of the glass samples were measured on samples with two or three different thicknesses using a Cary 5000 Spectrometer at wavelengths of from 250 nm to 2500 nm, at a resolution of 1 nm, and using an integrating sphere. The internal transmittance values for 10 mm thick samples was calculated between 375 nm and 1175 nm using the measured refractive index and the measured total transmittance at those said different thicknesses. The total transmittance considers the loss by reflection of light on the surface of the sample. The wavelengths corresponding to specific values of total transmittance, such as, for example, 5% or 70%, are represented as à with corresponding subscripts, such as 25% and hyo, respectively.
[0047] The refractive index values reported herein were measured at room temperature (about 25 °C), unless otherwise specified. The refractive index values for a glass sample were measured using a Metricon Model 2010 prism coupler refractometer with an uncertainty of about + 0.0002. Using the Metricon, the refractive index of a glass sample was measured at two or more wavelengths of about 406 nm, 473 nm, 532 nm, 633 nm, 828 nm, and 1064 nm. The measured dependence characterizes the dispersion and was then fitted with a Cauchy's law equation or Selimeier equation to allow for calculation of the refractive index of the sample at a given wavelength of interest between the measured wavelengths. The term "refractive index ny" or “ng” is used herein to refer to a refractive index calculated as described above at a wavelength of
587.56 nm, which corresponds to the helium d-line wavelength. The term "refractive index nc" or “nc” is used herein to refer to a refractive index calculated as described above at a wavelength of
656.3 nm. The term "refractive index n:" or ne” is used herein to refer to a refractive index calculated as described above at a wavelength of 486.1 nm. The term “refractive index ng” or “n,” is used herein to refer to a refractive index calculated as described above at a wavelength of
435.8 nm,
[0048] As used herein, the terms "high refractive index" or "high index" refer to a refractive index value of a glass that is greater than or equal to 1.80, unless otherwise indicated. Where indicated, embodiments of the terms "high refractive index” or "high index” refer to a refractive index value of a glass that is greater than or equal to 1.85, greater than or equal to 1.90, or greater than or equal to 1.95, or greater than or equal to 2.00.
[0049] The terms "dispersion" and "optical dispersion” are used interchangeably to refer to a difference or ratio of the refractive indices of a glass sample at predetermined wavelengths. One numerical measure of optical dispersion reported herein is the Abbe number, which can be calculated by the formula: v, = {n, - 1}/{ns - nc), where "x" in the present disclosure stands for one of the commonly used wavelengths (for example, 587.56 nm [d-line] for v4 or 589.3 nm [D-line] for vp), ny is the refractive index at this wavelength (for example, ng for vq and np for vp), and ng and nc are refractive indices at the wavelengths 486.1 nm (F-line) and 656.3 nm (C-line),
respectively. The numerical values of vq and vo differ very slightly, mostly within £0.1% to +0.2%. A higher Abbe number corresponds to a lower optical dispersion.
[0050] The numerical value for an Abbe number corresponding to "high dispersion” or "low dispersion" may vary depending on the refractive indices for which the Abbe number is calculated. In some cases, an Abbe number corresponding to "low dispersion" for a high refractive index glass may be lower than an Abbe number corresponding to "low dispersion” for a low refractive index glass. In other words, as the calculated refractive index value increases, the value of the Abbe number corresponding to low dispersion decreases. The same relates to "high dispersion" as well.
[0051] The term "oi," or "02030," as used herein, refers to the average coefficient of linear thermal expansion (CTE) of the glass composition over a temperature range from 20°C to 300 °C. This property is measured by using a horizontal dilatometer (push-rod dilatometer) in accordance with ASTM E228-11. The numeric measure of a is a linear average value in a specified temperature range {e.g., 20°C to 300°C) expressed as a=AL/{L,AT), where Lg is the linear size of a sample at room temperature, and L is the change in the linear size (AL) in the measured temperature range AT.
[0052] The Young's elastic modulus E and the Poisson's ratio u are measured by using Resonant Ultrasound Spectroscopy, using a Quasar RUSpec 4000 available from ITW indiana Private Limited, Magnaflux Division.
[0053] The glass transition temperature (T,) is measured by differential scanning calorimeter (DSC) at the heating rate of 10 K/min after cooling in air.
[0054] The term "annealing point," as used herein, refers to the temperature determined according to ASTM C598-93(2013), at which the viscosity of a glass of a given glass composition is approximately 10? poise.
[0055] Glass composition may include boron oxide (B203}. According to some embodiments of the present disclosure, boron oxide may play a role of a glass former. As a glassformer, B203 may help to increase the liquidus viscosity and, therefore, protect a glass composition from crystallization. However, adding B;03 to a glass composition may cause liquid-liquid phase separation, which may cause devitrification and/or reducing the transmittance of the resulting glass. Also, adding B,0; to the high-index glasses reduces the refractive index. Accordingly, the amount of boron oxide in glasses of the present disclosure is limited, or glasses may be substantially free of B,0;. In embodiments, the glass composition may contain boron oxide {B,03} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 41.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain B203 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 21.5 mol.%, greater than or equal to
23.0 mol.%, greater than or equal to 27.0 mol.%, greater than or equal to 30.0 mol.%, greater than or equal to 35.0 mol.%, or greater than or equal to 40.0 mol.%. In some other embodiments, the glass composition may contain B203 in an amount less than or equal to 41.0 mol.%, less than or equal to 40.0 mol.%, less than or equal to 35.0 mol.%, less than or equal to 34.5 mol.%, less than or equal to 33.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 20.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may contain B,0; in an amount greater than or equal to 0.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to
10.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to 20.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.%, greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.%, greater than or equal to 27.05 mol.% and less than or equal to 33.24 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 41.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to
5.0 mol.%, greater than or equal to 20.0 mol.% and less than or equal to 30.0 mol.%, greater than or equal to 30.0 mol.% and less than or equal to 33.0 mol.%, greater than or equal to 34.5 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 35.0 mol.% and less than or equal to 40.0 mol.%.
[0056] Glass composition may include silica {Si0,). Silica may play a role of an additional glass- former. Silica, as well as B;03, may help to increase the liquidus viscosity {viscosity at the liquidus temperature) and, therefore, protect a glass composition from crystallization. However, adding SiO, to a glass composition may cause liquid-liquid phase separation, which may cause devitrification and/or reducing the transmittance of the resulting glass. Also, SiO, is a low refractive index component and makes it difficult to achieve high index glasses. Accordingly, the content of SiO in the embodiments of the present disclosure is limited, or glasses may be substantially free of SiQ;. In embodiments, the glass composition may contain silica {SiO;) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 15.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain SiO; in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 9.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to
11.0 mol.%, or greater than or equal to 13.0 mol.%. in some other embodiments, the glass composition may contain SiO; in an amount less than or equal to 15.0 mol.%, less than or equal to
13.5 mol.%, less than or equal to 13.0 mol.%, less than or equal to 12.5 mol.%, less than or equal to 11.5 mol.%, less than or equal to 11.0 mol.%, less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 6.0 mol.%, less than or equal to 5.0 mol.%, less than or equal to 4.8 mol.%, or less than or equal to 4.5 mol.%. In some more embodiments, the glass composition may contain SiO; in an amount greater than or equal to 0.0 mol.% and less than or equal to 15.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 13.5 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 12.5 mol.%, greater than or equal to
0.0 mol.% and less than or equal to 11.5 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.%, greater than or equal to 0.03 mol.% and less than or equal to 5.77 mol.%, greater than or equal to 4.5 mol.% and less than or equal to 4.8 mol.%, greater than or equal to
4.8 mol.% and less than or equal to 15.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 15.0 mol.%, greater than or equal to 6.0 mol.% and less than or equal to 9.0 mol. %.
[0057] Glass composition may include germania (GeO;). Germania (GeO;} provides excellent ratio between the refractive index and density and does not reduce transmittance. However, germania is too expensive, and thus it may make a glass composition not economical. Accordingly, the content of germania should be limited, or glass compositions may be free of GeQ,, or glasses may be substantially free of GeO,. In embodiments, the glass composition may contain germania (GeQ,) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub-ranges between the foregoing values. in some embodiments, the glass composition may contain GeO, in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to 9.0 mol.%. In some other embodiments, the glass composition may contain GeO, in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.0 mol.%, less than or equal to
5.0 mol.%, less than or equal to 4.8 mol.%, or less than or equal to 0.5 mol.%. In some more embodiments, the glass composition may contain GeO; in an amount greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.%, greater than or equal to 0.5 mol.% and less than or equal to 10.0 mol.%, greater than or equal to
0.5 mol.% and less than or equal to 4.8 mol.%, greater than or equal to 4.8 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 4.8 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to
5.0 mol.% and less than or equal to 7.0 mol.%.
[0058] Glass composition may include monovalent metal oxides (R;0). Monovalent metal oxides, such as alkali metal oxides {Li,O, Na20, KO, Rb,0 and Cs;0) or others (for example, Ag:0 or TO} may help to better accommodate the index raisers, such as TIO, Nb,Os or WO3, in the glass structure, which may cause increasing their solubility in a glass and, accordingly, indirectly cause increasing the refractive index at an acceptably low density.
[0059] In some embodiments, the glass composition may contain monovalent metal oxides R;0 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 2.0 mol.%, greater than or equal to 3.0 mol.%, or greater than or equal to 4.0 mol.%. In some other embodiments, the glass composition may contain monovalent metal oxides R,0 in an amount less than or equal to 5.0 mol.%, less than or equal to 4.0 mol.%, less than or equal to
3.0 mol.%, less than or equal to 2.0 mol.%, or less than or equal to 1.0 mol.%. In some more embodiments, the glass composition may contain R;0 in an amount from 0.0 mol.% to 5.0 mol.%, from 0.0 mol.% to 4.0 mol.%, from 0.0 mol.% to 3.0 mol.%, from 0.0 moi.% to 2.0 mol.%, from 1.0 mol.% to 5.0 mol.%, from 1.0 mol.% to 4.0 mol.%, from 1.0 mol.% to 3.0 mol.%, from 1.0 mol.% to
2.0 mol.%, from 2.0 mol.% to 5.0 mol.%, from 2.0 mol.% to 4.0 mol.%, from 2.0 mol.% to 3.0 mol.%, from 3.0 mol.% to 5.0 mol.%, from 3.0 mol.% to 4.0 mol.%, from 1.0 mol.% to 3.0 mol.%, from 2.0 mol.% to 4.0 mol.%, or from 1.0 mol.% to 4.0 mol.%.
[0060] Glass composition may include divalent metal oxides (RO). Divalent metal oxides, such as alkaline earth metal oxides (BeO, MgO, CaO, SrO and BaO}, zinc oxide {ZnO}, cadmium oxide (CdO), lead oxide (PbO) and others, being added to a glass, provide comparably high refractive indexes, greater than those for most of monovalent oxides. Some divalent metal oxides, such as, for example, CaO, SrO and ZnO, also provide comparably low density, therefore, increasing the ratio of the refractive index to density and, accordingly, improving the performance of optical glasses in certain applications. In addition, divalent metal oxides may help to increase the solubility of high index components, such as TiO,, Nb;0: and WO:, which indirectly leads to a further increase in the refractive index at a comparable density, Also, some divalent metal oxides, such as, for example, ZnO and MgO, provide comparably low thermal expansion coefficient, which may reduce the thermal stresses formed in the glass articles when cooling and, therefore, improve the quality of the glass articles. However, when adding at high amounts, divalent metal oxides may cause crystallization of refractory minerals from the melts or liquid-liquid phase separation, which may reduce the glass-forming ability of glasses. Accordingly, the amount of divalent metal oxides in glass compositions of the present disclosure is limited.
[0061] In some embodiments, the glass composition may contain divalent metal oxides RO in an amount greater than or equal to 0.0 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 2.0 mol.%, greater than or equal to 3.0 mol.%, or greater than or equal to 4.0 mol.%. in some other embodiments, the glass composition may contain divalent metal oxides RO in an amount less than or equal to 5.0 mol.%, less than or equal to 4.0 mol.%, less than or equal to 3.0 mol.%, less than or equal to 2.0 mol.%, or less than or equal to 1.0 mol.%. In some more embodiments, the glass composition may contain RO in an amount from 0.0 mol.% to 5.0 mol.%, from 0.0 mol.% to 4.0 mol.%, from 0.0 mol.% to 3.0 mol.%, from 0.0 mol.% to 2.0 mol.%, from 1.0 mol.% to 5.0 mol.%, from 1.0 mol.% to 4.0 mol.%, from 1.0 mol.% to 3.0 mol.%, from 1.0 mol.% to
2.0 mol.%, from 2.0 mol.% to 5.0 mol.%, from 2.0 mol.% to 4.0 mol.%, from 2.0 mol.% to 3.0 mol.%, from 3.0 mol.% to 5.0 mol.%, from 3.0 mol.% to 4.0 mol.%, from 0 mol.% to 2.0 mol.%, from 2.0 mol.% to 4.0 mol.%, or from 2.0 mol.% to 5.0 mol.%.
[0062] Glass composition may include zinc oxide (ZnO). Zinc oxide provides a good refractive index to density ratio and may sometimes increase the solubility of titania, which indirectly increases the refractive index of glasses. However, it was found that in some embodiments, at high concentrations of ZnO, the glass-forming ability of the melt decreases and the melt may tend to crystallize during cooling.
[0063] in some embodiments, the glass composition may contain ZnO in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 25.0 mol.%, or greater than or equal to 30.0 mol.%. In some other embodiments, the glass composition may contain ZnO in an amount less than or equal to 35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to
20.0 mol.%, less than or equal to 5.0 mol.%, or less than or equal to 0.05 mol.%. In some more embodiments, the glass composition may contain ZnO in an amount greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 0.05 mol.%, greater than or equal to 0.05 mol.% and less than or equal to 35.0 mol.%, greater than or equal to
0.05 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 20.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to
20.0 mol.% and less than or equal to 25.0 mol.%.
[0064] Glass composition may include barium oxide (BaO). Barium oxide may increase the solubility of high index components, such as TiO; and Nb,0Os, which may indirectly lead to a further increase in the refractive index at comparably low density. However, barium is a heavy element and, being added in a high amount, may increase the density of glass. Also, in high concentration, it may cause crystallization of such minerals as barium titanate {BaTiQs), barium niobate (BaNb;Os} and others. Accordingly, the amount of BaO in glasses of the present disclosure is limited, or glasses may be substantially free of BaO. In embodiments, the glass composition may contain barium oxide (BaO) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain BaO in an amount greater than or equal to 0.0 mol.%, or greater than or equal to 5.0 mol.%. In some other embodiments, the glass composition may contain BaO in an amount less than or equal to 10.0 mol.%, less than or equal to 5.0 mol.%, less than or equal to 4.6 mol.%, less than or equal to 4.0 mol.%, or less than or equal to 1.6 mol.%. In some more embodiments, the glass composition may contain BaO in an amount greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.%, greater than or equal to 0.01 mol.% and less than or equal to 1.6 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.%, greater than or equal to 1.6 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 1.6 mol.% and less than or equal to 4.0 mol.%.
[0065] Glass composition may include lead oxide (PbO). Lead oxide provides very high refractive index, but also significantly increases the density. Also, PbO may cause ecological concern. For these reasons, the content of PbO in glasses of the present disclosure should be limited, or glasses may be substantially free of PbO. In embodiments, the glass composition may contain lead oxide (PbO} in an amount from greater than or equal to 0.0 mol.% to less than or equal to
10.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain PbO in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to 9.0 mol.%. In some other embodiments, the glass composition may contain PbO in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.0 mol.%, less than or equal to 5.0 mol.%, or less than or equal to 0.5 mol.%. In some more embodiments, the glass composition may contain PbO in an amount greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.%, greater than or equal to
0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.5 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.5 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to
5.0 mol.% and less than or equal to 7.0 mol.%, greater than or equal to 7.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 7.0 mol.% and less than or equal to 8.0 mol.%.
[0066] In some embodiments, the glass composition may contain rare earth metal oxides in trivalent equivalent RE20; in an amount greater than or equal to 0.0 mol.%, greater than or equal to 0.25 mol.%, greater than or equal to 0.5 mol.%, or greater than or equal to 0.75 mol. %.
[0067] Glass composition may include lanthanum oxide {La20:3). Lanthanum oxide is one of the cheapest oxides providing high refractive indexes without significant loss of transmittance in visible range. Also, addition of La,03; may reduce the risk of phase separation. However, La;03 provides higher density than other high-index components, such as, for example, TiO,, Nb,Os or WO. Also, when added in high amounts, it may cause crystallization of refractory species. For this reason, the content of La,0; in the glasses of the present disclosure should be limited. In embodiments, the glass composition may contain lanthanum oxide {La,03} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 35.0 mol.% and all ranges and sub- ranges between the foregoing values. In some embodiments, the glass composition may contain La203 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 13.0 mol.%, greater than or equal to
14.5 mol.%, greater than or equal to 15.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 25.0 mol.%, or greater than or equal to 30.0 mol.%. In some other embodiments, the glass composition may contain La,0; in an amount less than or equal to 35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 24.0 mol.%, less than or equal to 22.5 mol.%, less than or equal to 21.4 mol.%, less than or equal to 20.0 moi.%, less than or equal to 5.0 mol.%, or less than or equal to 1.0 mol.%. In some more embodiments, the glass composition may contain La,0; in an amount greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.%, greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.%, greater than or equal to 15.0 mol.% and less than or equal to
25.0 mol.%, greater than or equal to 19.97 mol.% and less than or equal to 21.43 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to
35.0 mol.%, greater than or equal to 20.0 mol.% and less than or equal to 21.4 mol.%, greater than or equal to 21.4 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 21.4 mol.% and less than or equal to 22.5 mol.%, greater than or equal to 22.5 mol.% and less than or equal to 24.0 mol.%.
[0068] In embodiments, the glass composition may contain yttria {Y203} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub- ranges between the foregoing values. In some embodiments, the glass composition may contain Y20O3 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to 9.0 mol.%. In some other embodiments, the glass composition may contain Y,0; in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol. %, less than or equal to 7.5 mol.%, less than or equal to 7.0 mol.%, less than or equal to 6.5 mol.%, less than or equal to 5.75 mol.%, less than or equal to 5.0 mol.%, or less than or equal to 1.0 mol.%. In some more embodiments, the glass composition may contain Y,0; in an amount greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.75 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 0.38 mol.% and less than or equal to 5.02 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 5.75 mol.%, greater than or equal to 5.75 mol.% and less than or equal to 6.5 mol.%.
[0069] In some embodiments, the glass composition may contain gadolinium oxide {Gd,03) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 5.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain Gd20; in an amount greater than or equal to 0.0 mol.%, or greater than or equal to 2.5 mol.%. in some other embodiments, the glass composition may contain Gd,0; in an amount less than or equal to 5.0 mol.%, less than or equal to 5.0 mol.%, less than or equal to 2.5 mol.%, or less than or equal to 1.0 mol.%. In some more embodiments, the glass composition may contain Gd:0; in an amount greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.%, greater than or equal to
1.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 2.5 mol.%, greater than or equal to 2.5 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 2.5 mol.% and less than or equal to 5.0 mol.%.
[0070} Glass composition may include alumina (Al03). Alumina may increase the viscosity of glassforming melts at high temperature, which may reduce the critical cooling rate and improve the glassforming ability. However, addition of ALO; may cause crystallization of refractory minerals, such as aluminum titanate (Al; TiOs), aluminum niobate (AINbO,} and others, in the melts when cooling. Accordingly, the amount of Al,O; in glasses of the present disclosure is limited, or glasses may be substantially free of Al,Oa. In embodiments, the glass composition may contain alumina (Al,0;) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub-ranges between the foregoing values. in some embodiments, the glass composition may contain Al,O3 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to 9.0 mol.%. In some other embodiments, the glass composition may contain Al;O; in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may contain ALO; in an amount greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 10.0 mol.%.
[0071] In embodiments, the glass composition may contain molybdenum oxide (MoO:3} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain MoO; in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to 9.0 mol.%. In some other embodiments, the glass composition may contain MoO; in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.0 mol.%, less than or equal to 5.0 mol.%, or less than or equal to
3.0 mol.%. In some more embodiments, the glass composition may contain MoO;3 in an amount greater than or equal to 0.0 mol. % and less than or equal to 3.0 mol.%, greater than or equal to
0.0 mol.% and less than or equal to 10.0 mol.%.
[0072] Glass composition may include tellurium oxide (TeQ,}. Tellurium oxide generally works like below-described bismuth oxide; in addition, Te, is very expensive, which may make the cost of starting materials unacceptably high. Accordingly, the content of tellurium oxide should be limited, or glass compositions may be free of TeO,. in embodiments, the glass composition may contain tellurium oxide (TeO,) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 20.0 mol.% and all ranges and sub-ranges between the foregoing values. in some embodiments, the glass composition may contain TeO in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 14.0 mol.%, greater than or equal to 16.0 mol.%, or greater than or equal to 18.0 mol.%.
In some other embodiments, the glass composition may contain TeO; in an amount less than or equal to 20.0 mol.%, less than or equal to 18.0 mol.%, less than or equal to 16.0 mol.%, less than or equal to 14.0 mol.%, less than or equal to 10.0 mol.%, less than or equal to 5.0 mol.%, or less than or equal to 2.0 mol.%. In some more embodiments, the glass composition may contain TeO; in an amount greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 moi.% and less than or equal to 2.0 mol.%.
[0073] Glass composition may include vanadia (V,0s). Vanadia provides the highest ratio of the refractive index to density among all oxides. However, vanadia may cause undesirable dark coloring. For these reasons, the content of vanadia in the glasses of the present disclosure is limited, or glass compositions may be free of V,0:. In embodiments, the glass composition may contain vanadia (V,0;) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 5.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain V,0s in an amount greater than or equal to 0.0 mol.%, or greater than or equal to 2.5 mol.%. in some other embodiments, the glass composition may contain V;Os in an amount less than or equal to 5.0 mol.%, less than or equal to 2.5 mol.%, less than or equal to 1.0 mol.%, or less than or equal to 0.1 mol.%. In some more embodiments, the glass composition may contain V,0s in an amount greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 0.1 mol.%.
[0074] In embodiments, the glass composition may contain thorium oxide (ThO,} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 10.0 mol.% and all ranges and sub-ranges between the foregoing values. in some embodiments, the glass composition may contain ThQ, in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 7.0 mol.%, greater than or equal to 8.0 mol.%, or greater than or equal to
9.0 mol.%. In some other embodiments, the glass composition may contain ThO; in an amount less than or equal to 10.0 mol.%, less than or equal to 9.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may contain ThO; in an amount greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%.
[0075] Glass composition may include tantalum oxide (Ta205). Tantalum oxide increases the refractive index while maintaining an acceptable density without reducing the blue transmittance. However, Ta,0s may cause crystallization of refractory minerals. Accordingly, the content of tantalum oxide should be limited, or glass compositions may be free of Ta; 0s. In embodiments, the glass composition may contain tantalum oxide (Ta20s} in an amount from greater than or equal to 0.0 mol.% to less than or equal to 25.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain Ta,0s in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to
10.0 mol.%, greater than or equal to 19.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 21.0 mol.%, or greater than or equal to 23.0 mol.%. In some other embodiments, the glass composition may contain Ta,0s in an amount less than or equal to 25.0 mol.%, less than or equal to 23.0 mol.%, less than or equal to 21.0 mol.%, less than or equal to 20.0 mol.%, less than or equal to 19.0 mol.%, less than or equal to 10.0 mol.%, less than or equal to 5.0 mol.%, or less than or equal to 2.0 mol.%. In some more embodiments, the glass composition may contain Ta,0s in an amount greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to
0.0 mol.% and less than or equal to 2.0 mol.%.
[0076] Glass composition may include zirconia {ZrO;}. Zirconia can increase the refractive index while maintaining an acceptably low density. ZrO; can also increase the viscosity of the melt, which may help to protect the melt from crystallization. ZrO, does not introduce coloring in the glass in the visible and near-UV ranges, which may help to maintain a high transmittance of the glass. However, high concentrations of zirconia may cause crystallization of refractory minerals, such as zirconia (Zr0,), zircon (ZrSi0y), calcium zirconate {CaZrO:} and others, which may decrease the glass forming ability of the melt. In embodiments, the glass composition may contain zirconia {Zr0,) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 20.0 mol. % and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain ZrO, in an amount greater than or equal to 0.0 mol.%, greater than or equal to 0.3 mol.%, greater than or equal to 0.5 mol.%, greater than or equal to 1.75 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 6.99 mol.%, greater than or equal to
10.0 mol.%, greater than or equal to 14.0 mol.%. In some other embodiments, the glass composition may contain ZrO; in an amount less than or equal to 20.0 mol.%, less than or equal to 18.0 mol.%, less than or equal to 16.0 mol.%, less than or equal to 14.0 mol.%, less than or equal to 10.0 mol.%, less than or equal to 8.0 mol.%, less than or equal to 7.5 mol.%, less than or equal to 7.25 mol.%, less than or equal to 7.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may contain ZrQ; in an amount greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.%, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.%, greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.%, greater than or equal to 6.99 mol.% and less than or equal to 7.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 7.0 mol.%, greater than or equal to 7.0 mol.% and less than or equal to 7.25 mol.%, greater than or equal to 7.5 mol.% and less than or equal to 8.0 mol.%, greater than or equal to 8.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 10.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 10.0 mol.% and less than or equal to 14.0 mol.%.
[0077] Glass composition may include bismuth oxide (Bi,03). Bi, 05 provides very high refractive index, ut leads to increases in density. However, it may decrease the viscosity of melts at high temperatures, which may cause crystallization of the melts when cooling. Accordingly, the content of bismuth oxide should be limited, or glass compositions may be free of Bi,0s. In embodiments, the glass composition may contain bismuth oxide (Bi,Os) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 35.0 mol.% and all ranges and sub- ranges between the foregoing values. In some embodiments, the glass composition may contain Bi, Os in an amount greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 25.0 mol.%, or greater than or equal to 30.0 mol.%. In some other embodiments, the glass composition may contain Bi,03 in an amount less than or equal to 35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 20.0 mol.%, less than or equal to 10.0 mol.%, less than or equal to 7.5 mol.%, less than or equal to 7.0 mol.%, or less than or equal to 5.0 mol.%. in some more embodiments, the glass composition may contain Bi203 in an amount greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol.%.
[0078] Glass composition may include niobia (Nb;Os). Niobia can be used to increase the refractive index of glass while maintaining a low density. However, niobia can introduce a yellow coloring to the glass that cannot be bleached in the same manner as titania, which can result in a loss of transmittance, particularly in the blue and UV range. Niobia may cause crystallization and/or phase separation of the melt. In some embodiments, the glasses may be substantially free of Nb20.. In embodiments, the glass composition may contain niobia {(Nb,Os) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 50.0 mol.% and all ranges and sub-
ranges between the foregoing values. In some embodiments, the glass composition may contain Nb,Os in an amount greater than or equal to 0.0 mol.%, greater than or equal to 0.3 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 3.0 mol.%, greater than or equal to
4.5 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 6.0 mol.%, greater than or equal to 7.8 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 25.0 mol.%, greater than or equal to 35.0 mol.%, greater than or equal to 40.0 mol.%, or greater than or equal to 45.0 mol.%. In some other embodiments, the glass composition may contain Nb,0Os in an amount less than or equal to 50.0 mol.%, less than or equal to 45.0 mol.%, less than or equal to
40.0 mol.%, less than or equal to 35.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 20.0 mol.%, less than or equal to 19.5 mol.%, less than or equal to 19.0 mol.%, less than or equal to 18.0 mol.%, less than or equal to 16.5 mol.%, less than or equal to 15.0 mol.%, or less than or equal to 10.0 mol.%. In some more embodiments, the glass composition may contain Nb;0s in an amount greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.%, greater than or equal to
0.3 mol.% and less than or equal to 19.5 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.%, greater than or equal to 3.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.%, greater than or equal to
6.0 mol.% and less than or equal to 16.5 mol.%, greater than or equal to 7.79 mol.% and less than or equal to 15.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to
10.0 mol.% and less than or equal to 15.0 moi.%, greater than or equal to 15.0 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 16.5 mol.% and less than or equal to 18.0 mol.%, greater than or equal to 18.0 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 18.0 mol.% and less than or equal to 19.0 mol.%, greater than or equal to 19.0 mol.% and less than or equal to 19.5 mol.%, greater than or equal to 19.5 mol.% and less than or equal to
50.0 mol. %.
[0079] Glass composition may include titania (TiO). The levels of TiO; and/or Nb20; that are typically used in glasses to increase refractive index tend to decrease the transmittance in the near-UV region and shift the UV cut-off to higher wavelengths. Accordingly, the amount of TiO; is limited. In embodiments, the glass composition may contain titania (TiO;) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 50.0 mol.% and all ranges and sub- ranges between the foregoing values. In some embodiments, the glass composition may contain TiO; in an amount greater than or equal to 0.0 mol.%, greater than or equal to 0.3 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 6.0 mol.%, greater than or equal to 7.5 mol.%, greater than or equal to 8.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 25.0 mol.%, greater than or equal to 35.0 mol.%, greater than or equal to 40.0 mol.%, or greater than or equal to 45.0 mol.%. In some other embodiments, the glass composition may contain TiO; in an amount less than or equal to 50.0 mol.%, less than or equal to 45.0 mol.%, less than or equal to 40.0 mol.%, less than or equal to
35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 28.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 22.0 mol.%, less than or equal to 20.0 mol.%, less than or equal to 19.0 mol.%, less than or equal to 17.0 mol.%, or less than or equal to 10.0 mol.%. In some more embodiments, the glass composition may contain TiO; in an amount greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 0.3 mol.% and less than or equal to 30.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 6.0 mol.% and less than or equal to 22.0 mol.%, greater than or equal to 7.5 mol.% and less than or equal to 28.0 mol.%, greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 10.0 mol.% and less than or equal to 16.98 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.%, greater than or equal to 17.0 mol.% and less than or equal to
19.0 mol.%, greater than or equal to 19.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 22.0 mol.% and less than or equal to 50.0 mol.%, greater than or equal to 22.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 25.0 mol.% and less than or equal to 28.0 mol.%.
[0080] Glass composition may include tungsten oxide (WO). WO: provides high refractive index without significantly increasing density or causing undesirable coloring. Also, it was empirically found that addition of WO; to glass composition may decrease the liquidus temperature, which allows melting such glasses at lower temperatures, that, in turn, may increase the transmittance of such glasses. Also, addition of WO3 may decrease the glass transition temperature Ts, which allows forming these glasses at lower temperatures. At high concentrations of WO3, the liquidus temperature tends to increase, and the viscosity at the liquidus temperature drops, making it difficult to avoid crystallization of melts when cooling. Accordingly, the content of WO; should be limited, or glass compositions may be free of WO. In embodiments, the glass composition may contain tungsten oxide {WOs) in an amount from greater than or equal to 0.0 mol.% to less than or equal to 40.0 mol.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain WO3 in an amount greater than or equal to 0.0 mol.%, greater than or equal to 1.0 mol.%, greater than or equal to 2.0 mol.%, greater than or equal to 3.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 6.0 mol.%, greater than or equal to 9.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to
25.0 mol.%, greater than or equal to 30.0 mol.%, or greater than or equal to 35.0 mol.%. In some other embodiments, the glass composition may contain WO; in an amount less than or equal to
40.0 mol.%, less than or equal to 35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 26.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 23.0 mol.%, less than or equal to 20.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may contain WQ; in an amount greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.%, greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to
2.0 mol.% and less than or equal to 26.0 mol.%, greater than or equal to 3.0 mol.% and less than or equal to 35.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.%, greater than or equal to 8.68 mol.% and less than or equal to 20.45 mol.%, greater than or equal to 0.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to 5.0 mol.% and less than or equal to 40.0 mol,%, greater than or equal to 5.0 mol.% and less than or equal to 20.0 mol.%, greater than or equal to 23.0 mol.% and less than or equal to 40.0 mol.%, greater than or equal to 23.0 mol.% and less than or equal to 25.0 mol.%, greater than or equal to 25.0 mol.% and less than or equal to 26.0 mol.%, greater than or equal to 26.0 mol.% and less than or equal to
30.0 mol.%, greater than or equal to 30.0 mol.% and less than or equal to 35.0 mol.%.
[0081] Glass composition may include fluorine (F). Adding fluorine to a glass composition is known to provide lower optical dispersion, which may improve the image quality. Also, fluorine can in some cases decrease the liquidus temperature, preventing a glass article from crystallization when cooling the melt. However, fluorine may be a subject of ecological concern. For that reason, the content of fluorine is limited, or glasses are free of fluorine. In embodiments, the glass composition may contain fluorine (F) in an amount from greater than or equal to 0.0 at.% to less than or equal to 5.0 at.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain F in an amount greater than or equal to 0.0 at.%, or greater than or equal to 2.5 at.%. In some other embodiments, the glass composition may contain F in an amount less than or equal to 5.0 at.%, less than or equal to 2.5 at.%, or less than or equal to 0.1 at.%.
[0082] In embodiments, the glass composition may contain chlorine (Cl) in an amount from greater than or equal to 0.0 at.% to less than or equal to 1.0 at.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain Cl in an amount greater than or equal to 0.0 at.%, or greater than or equal to 0.5 at.%. In some other embodiments, the glass composition may contain Cl in an amount less than or equal to 1.0 at.% or less than or equal to 0.5 at.%.
[0083] In embodiments, the glass composition may contain bromine {Br} in an amount from greater than or equal to 0.0 at.% to less than or equal to 1.0 at.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain Br in an amount greater than or equal to 0.0 at.%, or greater than or equal to 0.5 at.%. In some other embodiments, the glass composition may contain Br in an amount less than or equal to 1.0 at.% or less than or equal to 0.5 at.%.
[0084] In embodiments, the glass composition may contain iodine (1) in an amount from greater than or equal to 0.0 at.% to less than or equal to 1.0 at.% and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass composition may contain! in an amount greater than or equal to 0.0 at.%, or greater than or equal to 0.5 at.%. In some other embodiments, the glass composition may contain | in an amount less than or equal to 1.0 at.% or less than or equal to 0.5 at.%.
[0085] In some other embodiments, the glass composition may have a sum of Al,O;+RE,O, less than or equal to 30.0 mol.%.
[0086] In some other embodiments, the glass composition may have a sum of R,O+RO less than or equal to 5.0 mol.% or less than or equal to 1.0 mol.%.
[0087] In some embodiments, the glass composition may have a sum of RE;0:3+Zr0;+Ti0;+Nb;05+WO:3 greater than or equal to 0.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 30.0 mol.%, greater than or equal to 40.0 mol.%, greater than or equal to 50.0 mol.%, greater than or equal to 60.0 mol.%, or greater than or equal to 65.0 mol.%. In some other embodiments, the glass composition may have a sum of RE,03+Zr0;+Ti0,+Nb,0:+WO: less than or equal to 69.0 mol.%, less than or equal to 60.0 mol.%, less than or equal to 50.0 mol.%, less than or equal to 40.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 20.0 mol.%, or less than or equal to 10.0 mol.%. In some more embodiments, the glass composition may have a sum of RE203+Zr0;+Ti0+Nb;05+WO: from 0.0 mol.% to 69.0 mol.%, from 0.0 mol.% to 50.0 mol.%, from
0.0 mol.% to 30.0 mol.%, from 10.0 mol.% to 50.0 mol.%, from 10.0 mol.% to 30.0 mol.%, from
20.0 mol.% to 60.0 mol.%, from 20.0 mol.% to 50.0 mol.%, from 30.0 mol.% to 69.0 mol.%, from
30.0 mol.% to 60.0 mol.%, from 40.0 mol.% to 60.0 mol.%, from 21.0 mol.% to 46.0 mol.%, from
33.0 mol.% to 63.0 mol.%, or from 9.0 mol.% to 39.0 mol.%.
[0088] In some other embodiments, the glass composition may have a sum of Si0,+Ge0,; less than or equal to 4.8 mol. %.
[0089] In some embodiments, the glass composition may have a sum of TiO2+Nb20s greater than or equal to 0.0 mol.%, greater than or equal to 0.6 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to 21.0 mol.%, greater than or equal to
30.0 mol.%, greater than or equal to 40.0 mol.%, or greater than or equal to 50.0 mol.%. In some other embodiments, the glass composition may have a sum of TiO,+Nb,Os less than or equal to
60.0 mol.%, less than or equal to 50.0 mol.%, less than or equal to 40.0 mol.%, less than or equal to 35.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 29.6 mol.%, less than or equal to 20.0 mol.%, or less than or equal to 10.0 mol.%. in some more embodiments, the glass composition may have a sum of TiO, +Nb,05 from 0.0 mol.% to 35.0 mol.%, from 0.6 mol.% to
60.0 mol.%, from 0.0 mol.% to 60.0 mol.%, from 0.0 mol.% to 40.0 mol.%, from 10.0 mol.% to
40.0 mol.%, from 10.0 mol.% to 30.0 mol.%, from 10.0 mol.% to 20.0 mol.%, from 20.0 mol. % to
40.0 mol.%, from 21.0 mol.% to 30.0 mol.%, from 8.0 mol.% to 35.0 mol.%, from 3.0 mol.% to
43.0 mol.%, or from 15.0 mol.% to 55.0 mol.%.
[0090] In some embodiments, the glass composition may have a sum of WO3+Ti0, greater than or equal to 0.0 mol.%, greater than or equal to 5.0 mol.%, greater than or equal to 10.0 mol.%, greater than or equal to 15.0 mol.%, greater than or equal to 20.0 mol.%, greater than or equal to
23.0 mol.%, greater than or equal to 25.0 mol.%, greater than or equal to 30.0 mol.%, or greater than or equal to 35.0 mol.%. In some other embodiments, the glass composition may have a sum of WO3+TiO, less than or equal to 40.0 mol.%, less than or equal to 35.0 mol.%, less than or equal to 34.0 mol.%, less than or equal to 30.0 mol.%, less than or equal to 25.0 mol.%, less than or equal to 20.0 mol.%, less than or equal to 15.0 mol.%, less than or equal to 10.0 mol.%, or less than or equal to 5.0 mol.%. In some more embodiments, the glass composition may have a sum of WO3+Ti0; from 0.0 mol.% to 40.0 moi.%, from 0.0 mol.% to 30.0 mol.%, from 0.0 mol.% to 15.0 mol.%, from 5.0 mol.% to 15.0 mol.%, from 10.0 mol.% to 15.0 mol.%, from 20.0 mol.% to 40.0 mol.%, from 20.0 mol.% to 35.0 mol.%, from 20.0 mol.% to 30.0 mol.%, from 23.0 mol.% to 35.0 mol.%, from 23.0 mol.% to 34.0 mol.%, from 8.0 mol.% to 20.0 mol.%, from 0 mol.% to 28.0 mol.%, or from 15.0 mol.% to 27.0 mol.%.
[0091] In some embodiments, glass may have limitations for the difference B,03;+5i0,-P,0;5. The difference (B,05+5i0,-P;0s) distinguishes borate, silicoborate and borosilicate glasses from phosphate glasses. Positive values of the difference {B,03+Si0,-P,0s) identify borate, silicoborate or borosilicate glasses, whereas negative values of this quantity identify phosphate glasses. In some embodiments, the glass may have a difference B;0;+Si0,-P,0s greater than or equal to 0 mol.%. In some embodiments, the glass composition may have a difference B;03+5i0;-P20s greater than or equal to 0 mol.%, greater than or equal to 1 mol.%, greater than or equal to 5 mol.%, greater than or equal to 10 mol.%, greater than or equal to 15 mol.%, greater than or equal to 20 mol.%, greater than or equal to 25 mol.%, greater than or equal to 30 mol.%, or greater than or equal to 35 mol.%. In some other embodiments, the glass composition may have a difference B,0;+5i0,-P,0s less than or equal to 40 mol.%, less than or equal to 35 mol.%, less than or equal to 30 mol.%, less than or equal to 25 mol.%, less than or equal to 20 mol.%, or less than or equal to 15 mol.%. In some more embodiments, the glass composition may have a B,03+5i0,-P,05 from 0 mol.% to 40 mol.%, from 0 mol.% to 10 mol.%, from 1 mol.% to 20 mol.%, from 1 mol.% to 10 mol.%, from 5 mol.% to 20 mol.%, from 5 mol.% to 10 mol.%, from 10 mol.% to 30 mol.%, from 10 mol.% to 20 mol.%, from 15 mol.% to 40 mol.%, from 15 mol.% to 35 mol.%, from 15 mol.% to 30 mol.%, from 15 mol.% to 25 mol.%, from 15 mol.% to 20 mol.%, from 20 mol.% to 25 mol.%, from 20 mol.% to 35 mol.%, from 6 mol.% to 25 mol.%, or from 9 mol.% to 31 mol.%.
[0092] In some embodiments, glass composition may have limitations for the difference TiO,- SiO,. The higher this difference, the higher refractive index may be expected to reach at a given density. However, if this difference is too high, the risk of phase separation may appear, which may cause crystallization and/or loss of transmittance. In some embodiments, the glass may have a difference Ti0,-Si0, greater than or equal to 7.5mol.%, greater than or equal to 8 mol.%, greater than or equal to 8 mol.%, greater than or equal to 10 mol.%, greater than or equal to 12 mol.%, or greater than or equal to 15 mol.%. In some other embodiments, the glass composition may have a difference Ti0,-Si0, less than or equal to 16 mol.%, less than or equal to 15 mol.%, less than or equal to 12 mol.%, or less than or equal to 10 mol.%. In some more embodiments, the glass composition may have a Ti0,-5i0, from 8 mol.% to 16 mol.%, from 8 mol.% to 15 mol.%, from 8 mol.% to 12 mol.%, from 8 mol.% to 16 mol.%, from 8 mol.% to 15 mol.%, from 8 mol.% to 12 mol.%, from 10 mol.% to 16 mol.%, from 10 mol.% to 15 mol.%, from 10 mol.% to 12 mol.%, from 12 mol.% to 16 mol.%, from 12 mol.% to 15 mol.%, from 9 mol.% to 12 mol.%, from 11 mol.% to 14 mol.%, or from 11 mol.% to 15 mol.%.
[0093] In some embodiments, the glass produced from the glass composition may have ng from greater than or equal to 1.85 to less than or equal to 2.10 and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass may have the n4 greater than or equal to
1.85, greater than or equal to 1.86, greater than or equal to 1.88, greater than or equal to 1.90, greater than or equal to 1.92, greater than or equal to 1.95, greater than or equal to 1.98, greater than or equal to 2.01, greater than or equal to 2.04, greater than or equal to 2.05, greater than or equal to 2.06, or greater than or equal to 2.08. In some other embodiments, the glass may have the nq less than or equal to 2.10, less than or equal to 2.08, less than or equal to 2.08, less than or equal to 2.07, less than or equal to 2.06, less than or equal to 2.05, less than or equal to 2.04, less than or equal to 2.03, less than or equal to 1.95, less than or equal to 1.92, less than or equal to
1.90, less than or equal to 1.88, or less than or equal to 1.86. In some more embodiments, the glass may have the ng greater than or equal to 1.85 to 2.10, greater than or equal to 1.92 to 2.08, greater than or equal to 1.95 to 2.07, greater than or equal to 1.85 and less than or equal to 2.06, greater than or equal to 1.85 and less than or equal to 1.86, greater than or equal to 1.86 and less than or equal to 1.95, greater than or equal to 1.88 and less than or equal to 2.07, greater than or equal to 1.88 and less than or equal to 1.92, greater than or equal to 1.90 and less than or equal to 2.07, greater than or equal to 1.90 and less than or equal to 1.92, greater than or equal to 1.92 and less than or equal to 2.04, greater than or equal to 1.95 and less than or equal to 2.08, greater than or equal to 1.95 and less than or equal to 2.06, greater than or equal to 1.95 and less than or equal to 2.04, greater than or equal to 2.03 and less than or equal to 2.08, greater than or equal to 2.03 and less than or equal to 2.06, greater than or equal to 1.86 and less than or equal to 1.94, greater than or equal to 1.87 and less than or equal to 1.98, or greater than or equal to
1.98 and less than or equal to 2.08.
[0094] In some embodiments, the glass composition may have a liquidus temperature Tig from greater than or equal to 850 °C to less than or equal to 1350 °C and all ranges and sub-ranges between the foregoing values. in some embodiments, the glass composition may have the Tig greater than or equal to 850 °C, greater than or equal to 860 °C, greater than or equal to 880 °C, greater than or equal to 900 °C, greater than or equal to 1000 °C, greater than or equal to 1065 °C, greater than or equal to 1100 °C, greater than or equal to 1200 °C, greater than or equal to 1300 °C, greater than or equal to 1320 °C, or greater than or equal to 1340 °C. In some other embodiments, the glass composition may have the Ty, less than or equal to 1350 °C, less than or equal to 1340 °C, less than or equal to 1320 °C, less than or equal to 1300 °C, less than or equal to 1200 °C, less than or equal to 1108 °C, less than or equal to 1100 °C, less than or equal to 1050 °C, less than or equal to 1000 °C, less than or equal to 900 °C, less than or equal to 880 °C, or less than or equal to 860 °C. In some more embodiments, the glass composition may have the Ty, greater than or equal to 850 °C to 1350 °C, greater than or equal to 850 °C and less than or equal to 1200 °C, greater than or equal to 850 °C and less than or equal to 1000 °C, greater than or equal to 860 °C and less than or equal to 1300 °C, greater than or equal to 860 °C and less than or equal to 900 °C, greater than or equal to 880 °C and less than or equal to 1350 °C, greater than or equal to 880 °C and less than or equal to 1300 °C, greater than or equal to 880 °C and less than or equal to 1100 °C, greater than or equal to 880 °C and less than or equal to 900 °C, greater than or equal to 900 °C and less than or equal to 1300 °C, greater than or equal to 1000 °C and less than or equal to 1200 °C, greater than or equal to 1000 °C and less than or equal to 1100 °C, greater than or equal to 1050 °C and less than or equal to 1350 °C, greater than or equal to 1050 °C and less than or equal to 1100 °C, greater than or equal to 1100 °C and less than or equal to 1320 °C, greater than or equal to 919 °C and less than or equal to 1175 °C, greater than or equal to 1100 °C and less than or equal to 1308 °C, or greater than or equal to 919 °C and less than or equal to 1100 °C.
[0095] In some embodiments, the glass may have a glass transition temperature T, from greater than or equal to 500 °C to less than or equal to 725 °C and all ranges and sub-ranges between the foregoing values. In some embodiments, the glass may have the T, greater than or equal to 500 °C, greater than or equal to 510 °C, greater than or equal to 520 °C, greater than or equal to 530 °C, greater than or equal to 550 °C, greater than or equal to 600 °C, greater than or equal to 625 °C, greater than or equal to 650 °C, greater than or equal to 660 °C, greater than or equal to 700 °C, greater than or equal to 710 °C, or greater than or equal to 720 °C. In some other embodiments, the glass may have the T, less than or equal to 725 °C, less than or equal to 720 °C, less than or equal to 710 °C, less than or equal to 700 °C, less than or equal to 687 °C, less than or equal to 650 °C, less than or equal to 600 °C, less than or equal to 550 °C, less than or equal to 530 °C, less than or equal to 520 °C, or less than or equal to 510 °C. In some more embodiments, the glass may have the T, greater than or equal to 500 °C to 700 °C, greater than or equal to 500 °C and less than or equal to 725 °C, greater than or equal to 500 °C and less than or equal to 600 °C, greater than or equal to 500 °C and less than or equal to 520 °C, greater than or equal to 510 °C and less than or equal to 700 °C, greater than or equal to 510 °C and less than or equal to 600 °C, greater than or equal to 520 °C and less than or equal to 725 °C, greater than or equal to 520 °C and less than or equal to 700 °C, greater than or equal to 530 °C and less than or equal to 710 °C, greater than or equal to 530 °C and less than or equal to 600 °C, greater than or equal to 550 °C and less than or equal to 710 °C, greater than or equal to 550 °C and less than or equal to 600 °C, greater than or equal to 600 °C and less than or equal to 710 °C, greater than or equal to 600 °C and less than or equal to 687 °C, greater than or equal to 650 °C and less than or equal to 725 °C, greater than or equal to 650 °C and less than or equal to 720 °C, greater than or equal to 650 °C and less than or equal to 687 °C, greater than or equal to 597 °C and less than or equal to 718 °C, greater than or equal to 531 °C and less than or equal to 670 °C, or greater than or equal to 531 °C and less than or equal to 630 °C.
[0096] In some embodiments, the glass may have the density at room temperature da: from greater than or equal to 4.50 g/cm’ to less than or equal to 6.00 g/cm? and all ranges and sub- ranges between the foregoing values. In some embodiments, the glass may have the dr; greater than or equal to 4.50 g/em?, greater than or equal to 4.60 g/cm’, greater than or equal to 4.70 g/cm’, greater than or equal to 4.80 g/cm’, greater than or equal to 5.00 g/cm’, greater than or equal to 5.50 g/cm’, greater than or equal to 5.70 g/cm’, greater than or equal to 5.80 g/cm’, or greater than or equal to 5.90 g/cm’. In some other embodiments, the glass may have the dg; less than or equal to 6.00 g/cm’, less than or equal to 5.90 g/cm’, less than or equal to 5.80 g/cm’, less than or equal to 5.70 g/cm}, less than or equal to 5.50 g/cm’, less than or equal to 5.30 g/cm’, less than or equal to 5.00 g/cm?, less than or equal to 4.80 g/cm’, less than or equal to
4.70 g/cm’, or less than or equal to 4.60 g/cm’. in some more embodiments, the glass may have the dgr greater than or equal to 4.50 g/cm? to 5.50 g/cm’, greater than or equal to 4.50 g/cm? and less than or equal to 6.00 g/cm’, greater than or equal to 4.50 g/cm? and less than or equal to 5,70 g/em?, greater than or equal to 4.60 g/cm’ and less than or equal to 5.70 g/cm’, greater than or equal to 4.70 g/cm’ and less than or equal to 5.50 g/cm’, greater than or equal to 4.70 g/cm’ and less than or equal to 5.00 g/cm’, greater than or equal to 4.80 g/cm? and less than or equal to
5.80 g/cm’, greater than or equal to 4.80 g/cm? and less than or equal to 5.50 g/cm’, greater than or equal to 4.80 g/cm? and less than or equal to 5.00 g/cm’, greater than or equal to 5.00 g/cm’ and less than or equal to 5.80 g/cm’, greater than or equal to 5.30 g/cm’ and less than or equal to
5.90 g/cm’, greater than or equal to 5.30 g/cm’? and less than or equal to 5.70 g/cm’, greater than or equal to 5.30 g/cm? and less than or equal to 5.50 g/cm’, greater than or equal to 4.73 g/cm’ and less than or equal to 5.42 g/cm’, greater than or equal to 5.05 g/cm? and less than or equal to
5.50 g/cm’, or greater than or equal to 5.14 g/cm? and less than or equal to 5.70 g/cm’.
[0097] In some embodiments, the glass composition may have the decimal logarithm of liquidus viscosity greater than or equal to 0.5 or greater than or equal to 0.75.
[0098] In some embodiments, the glass may have a quantity ny - {1.437 + 0.0005 * Ty) greater than or equal to 0.
[0099] In some embodiments, the glass may have a quantity nq - {1.481 + 0.0005 * Tig) greater than or equal to 0.
[00100] In some embodiments, the glass may have a quantity (n4-1)/der - (0.269 - 0.12 * Ti) greater than or equal to 0.
[00101] In some embodiments, the glass may have a quantity (n4-1}/dr7 - (0.274 -0.12 * Ti) greater than or equal to 0.
[00102] In some embodiments, the glass may have a quantity ng - {1.571 + 0.083 * dg) greater than or equal to 0.
[00103] Transmittance index T; is a quantity calculated by the following formula (1): Ti = (La203+Gd203+Zr02+W0O:3}/{La203+Gd;03+ZrO2+WO3+TiO2+Nb;0s}, (1)
[00104] where chemical formulas mean the amounts of corresponding components in the glass composition expressed in mol. %.
[00105] FIG. 1 shows the relationship between the transmittance index T; according to formula {1} and the quantity 70%. The quantity As is a measured quantity and indicates the minimum wavelength corresponding to a total transmittance of 70% or higher for a glass sample in the form of a plate having a thickness of 10 mm. Lower values of 270% generally correspond to a higher range of wavelengths at which the glass sample has a high internal transmittance, and therefore lower values of 270% generally correspond to a higher transmittance of the glass sample overall. The data points in FIG. 1 correspond to data taken from U.S. Patent No. 10,287,205 {labeled as US 10287205), U.S. Patent Application No. 2011/105294 (labeled as US 2011105294) and WO Patent Application No. 2020/034215 (labeled as WO 2020034215). U.S. Patent No.
10,287,205 reported glass compositions in terms of cation percent. To calculate the transmittance index T; according to formula (1) in mol.%, the cation percent values were assumed to be equivalent to atomic percent of atoms, excluding oxygen, and the cation percent values were converted to mole percent of oxides and applied to formula {1}. As illustrated in FIG. 1, the data demonstrate a correlation between the quantity As and the transmittance index Ti.
[00106] Refractive index ng, density dz, refraction {ng-1)/dg; and glass transition temperature T, are properties of glass that can be predicted from the glass composition. A linear regression analysis of the Exemplary Glasses of the present disclosure in the EXAMPLES section below and other glass compositions reported in the literature was performed to determine equations that can predict the composition dependences of the refractive index ng, density dgy, refraction {ng-1)/dzy and glass transition temperature T4.
[00107] The training dataset of glass compositions satisfying the criteria specified in Table 1 below and having measured values of the properties of interest, about 100 glass compositions for each property (refractive index ng, density dr, refraction {ng-1)/ds; and glass transition temperature Tg), was randomly selected from the literature data presented in the publicly available SciGlass Information System database and from the Exemplary Glasses from the embodiments presented herein. The linear regression analysis on the above-specified dataset was used to determine the formulas, with the exclusion of insignificant variables and outliers. The resulting formulas are presented in Table 2 below. Another part of glass compositions satisfying the same criteria was used as a validation set to evaluate the ability to interpolate within predefined compositional limits, which corresponds to the standard deviations specified in the Table 2. An external dataset of prior art glass compositions, also randomly selected from the SciGlass Information System database, was used to evaluate the ability to predict the properties outside of the specified compositional limits with a reasonable accuracy. Multiple iterations of this process were performed in order to determine the best variant for each property, corresponding to the above-mentioned regression formulas specified in the Table 2.
[00108] The data for the Comparative Glass compositions used in the linear regression modeling, including the training dataset, validation dataset and external dataset were obtained from the publically available SciGlass Information System database. Formulas (Il), (Hi), (IV) and {V) below were obtained from the linear regression analysis and used to predict the refractive index ng, density dez, refraction (n4-1)/dg7 and glass transition temperature T, respectively, of the glasses: P,=-0.0051086 * Al,0; - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,0; -
0.0014511 * CaO + 0.0047429 * Gd,0, - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * 13,05 - 0.0023329 * 11,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb,Os -
0.0075074 * P,O; + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * 0 Ta;05 - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +
0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, Pa (g/cm?) = 4.95 - 0.036300 * ALO; - 0.028364 * B,03 + 0.010786 * BaO + 0.077280 * Bi; 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,0; - 0.024973 * K,0 +
0.050388 * La,0; - 0.015411 * Li;O - 0.014318 * Na;0 - 0.0016283 * Nb,0s + 0.078354 * Nd;03 - 0.045034 * P,O, + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - 0.015844 * TiO, + 0.020220 * WO; + 0.016362 * Y,0; + 0.058765 * Yb,03 + 0.0086588 * ZnO +
0.0043754 * ZrO, Pet (cm’/g} = 0.000087034 * SiO, - 0.00012035 * B,03 - 0.0012566 * La203 + 0.0011411 * TiO; - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb,;0s - 0.00023383 * MgO -
0.00086501 * BaO - 0.0004486 * WO3 - 0.0014114 * Gd,0; - 0.00023872 * Y,0; -
0.00031575 * Ta,0s + 0.00011894 * Li,O + 0.00027178 * Al,O; - 0.000099802 * Na;0 - wv)
0.00028391 * GeO, - 0.00030531 * SrO - 0.00072061 * Bi, 0; - 0.0010964 * Yh,0; +
0.00022839 * K,0 - 0.00086617 * PhO + 0.00027129 * TeO; + 0.198,
Pig (°C)= 595.358 - 0.63217 * B;,03 - 0.46552 * SiO; + 1.1849 * TiO; + 0.59610 * Nb,0s -
1.6293 * WO3 + 1.3877 * ZrO; + 4.4090 * La203 + 4.1695 * Y,03 - 5.0756 * Bi, 03 + 0.55630 * CaO - 5.3892 * PbO - 4.2774 * TeO; + 1.8497 * Al,03 - 0.40659 * GeO; - 1.7011 * ZnO - v)
4.1520 * Li,O + 3.0777 * Gd,0;.
[00109] in Formulas (It), (il), (IV) and {V) and Tables 1 and 2, refractive index parameter P, is a parameter that predicts the refractive index ng at 587.56 nm, calculated from the components of the glass composition expressed in mol.%; density parameter Py is a parameter that predicts the density dsr at room temperature [g/cm’], calculated from the components of the glass composition expressed in mol.%; refraction parameter P.; is a parameter that predicts the refraction (ng-1)/dgy, calculated from the components of the glass composition expressed in mol.%; and T, parameter Py, is a parameter that predicts the glass transition temperature T, [°C], calculated from the components of the glass composition expressed in mol.%.
[00110] in Formulas (11), (HI), (IV) and {V}, each component of the glass composition is fisted in terms of its chemical formula, where the chemical formula refers to the concentration of the component in the as-batched glass composition expressed in mol.%. It is understood that not all components listed in Formulas (1), (11), {IV} and (V} are necessarily present in a particular glass composition and that Formulas (11), (HI), (iV) and {V) are equally valid for glass compositions that contain less than all of the components listed in the formulas. It is further understood that Formulas (1), (Hi), {IV} and (V) are also valid for glass compositions within the scope and claims of the present disclosure that contain components in addition to the components listed in the formulas. If a component listed in Formulas (it), UI), {IV} and {V} is absent in a particular glass composition, the concentration of the component in the glass composition is 0 mol.% and the contribution of the component to the value calculated from the formulas is zero. In Table 1, REO, is a total sum of rare earth metal oxides. Table 1. Composition Space Used for Modeling Component Min, Max, Min, Max, Min, Max, Min, Max, [5 @ im Jom [rw La;03 30 1 30 30 Not Not TODD lil ww CA [om Jw
CEE
Component Min, Max, Min, Max, Min, Max, Min, Max, fo IB [ow Jv Iw |v |® Eee CaO 20 Not Not Not Not 20 ee ee |” Ba0 10 Not Not Not Not 10 ee ee ee Ee Bi, 0; 20 Not Not Not Not 20
I Not Not Not Not 15
A Po fom fo Im Jo fm ow TeO, 20 Not Not 10 20 I = ALO; + REO, 30 Not Not Not Not 30
SO GeO, 10 Not Not Not Not 10
I A F 3 5 5 Not Not
I La,03 + Gd;03 + | Not Not 10 Not 10 Not Not Not ZrO; + TiO, + limited | limited limited limited | limited | limited Nb,Os + WO; + Bi20; La,03 + Gd20: Not Not Not Not Not Not 1 35 ee ee ete F+Cl+Br+i Not Not Not Not Not Not 3 a at en a me TiO, + Nb;0; Not Not Not Not Not Not Not 45 ot oe i ee |”
Component Min, Max, Min, Max, Min, Max, Min, Max, SiO; + B,03 - Not Not Not Not Not Not Not FO fm ee Li,O + Na,0 + Not Not Not Not Not Not 25 DE 9 Other species Not Not Not Not TE ee [ie Re Table 2. Property prediction models Property Abbreviation | Unit | Predicting | Regression | Composition | Standard TT ee” ee Refractive index | ng P, Formula (il) | Mol.% 0.021 oe | Density at room | dg g/cm’ Formula Mol.% 0.12 mean i A I Refractive index | {ng-1)/dar cm’/g Pres Formula Mol.% 0.006 to density ratio (IV) ("refraction"} Glass transition | Tg °C Pig Formula (V) | Mol.% 15 Ee
[00111] FIG. 2 is a plot of the parameter P, calculated by Formula {Hl} as a function of measured refractive index ng for some Literature Glasses {"Comp. Glasses") and some Exemplary Glasses ("Ex. Glasses"). As illustrated by the data in FIG. 2, the compositional dependence of the parameter P, had an error within a range of + 0.021 unit of the measured ny for the majority of glasses, that corresponds to the standard error specified in Table 2.
[00112] FIG. 3 is a plot of the parameter Py calculated by Formula (Hi) as a function of measured density ds; for some Literature Glasses ("Comp. Glasses") and some Exemplary Glasses (Ex. Glasses"). As illustrated by the data in FIG. 3, the compositional dependence of the parameter Py had an error within a range of + 0.12 unit of the measured dg for the majority of glasses, that corresponds to the standard error specified in Table 2.
[00113] FIG. 4 is a plot of the parameter Ps calculated by Formula (IV) as a function of measured refraction {ng-1)/dgr for some Literature Glasses {"Comp. Glasses") and some Exemplary Glasses ("Ex. Glasses"). As illustrated by the data in FIG. 4, the compositional dependence of the parameter Pier had an error within a range of t 0.006 unit of the measured (ny- 1}/dgr for the majority of glasses, that corresponds to the standard error specified in Table 2.
[00114] FIG. 5 is a plot of the parameter Py, calculated by Formula (V) as a function of measured glass transition temperature T, for some Literature Glasses ("Comp. Glasses") and some Exemplary Glasses ["Ex. Glasses"). As illustrated by the data in FIG. 5, the compositional dependence of the parameter Py; had an error within a range of £ 15 unit of the measured T, for the majority of glasses, that corresponds to the standard error specified in Table 2.
[00115] When considering T, as a function of glass composition, one should understand that the numerical value of this quantity may depend on the method of its measurement (such as differential scanning calorimetry [DSC], differential thermal analysis [DTA], thermomechanical analysis [TMA] and others), measurement conditions (such as heating rate when measuring Ty when heating a sample), and the thermal history, that means the time-temperature schedule of preliminary thermal treatment, starting from melting a sample. That is why comparison of measured values of T, with the results of calculation from the glass composition may give some deviations caused by different method of measurement, and/or different process conditions, and/or different thermal history. The analysis of published data taken from different sources, performed with the use of the publicly available SciGlass Information System database shows that typically the values of T, reported for same compositions and obtained in different ways deviate from each other within approximately £10-20°C, which is, typically, many times less than the variation of T, caused by changing the glass compositions within the ranges considered in the present disclosure.
[001186] Accordingly, the formula for prediction of T, from the glass composition presented in the present disclosure relates to the experimental conditions and methods described in the disclosure, which assumes the measurement by DSC method when heating the glass samples with the rate of 10°C/min cooled according to the procedure described in the present disclosure without special preliminary treatment. When comparing the results of such calculations with the data published in the literature, it is assumed that the published values of T, typically do not deviate from the values obtained in the conditions used herein by more than approximately 20°C,
[00117] Table 3 identifies the combination of components and their respective amounts according to some embodiments of the present disclosure. The Exemplary Glasses A in Table 3 may include additional components according to any aspects of the present disclosure as described herein. Table 3: Exemplary Glasses A Te
[00118] Exemplary Glasses A according to embodiments of the present disclosure may have a refractive index at 587.56 nm nq from 1.92 to 2.08.
[00119] According to some embodiments of the present disclosure, Exemplary Glasses A may also have a liquidus temperature Tj, [°C] from 850 to 1350.
[00120] According to some embodiments of the present disclosure, Exemplary Glasses A may also satisfy the following formula: ng - (1.437 + 0.0005 * Tia) > 0.00, where ny is a refractive index at 587.56 nm, and Ty, is a liquidus temperature.
[00121] According to some embodiments of the present disclosure, Exemplary Glasses A may also satisfy the following formula: ng - (1.481 + 0.0005 * Tg) > 0.00, where ny is a refractive index at 587.56 nm, and Ti is a liquidus temperature.
[00122] Table 4 identifies the combination of components and their respective amounts according to some embodiments of the present disclosure. The Exemplary Glasses B in Table 4 may include additional components according to any aspects of the present disclosure as described herein. Table 4: Exemplary Glasses B mE Teen
[00123] Exemplary Glasses B according to embodiments of the present disclosure may satisfy the following condition: TiO;-5i0; [mol %] = 7.5, where chemical formulas refer to the amounts of components in glass, expressed in mol.%.
[00124] According to some embodiments of the present disclosure, Exemplary Glasses B may also satisfy the following condition: B,03+510,-P,05 [mol.%] = 0.00, where chemical formulas refer to the amounts of components in glass, expressed in mol.%.
[00125] According to some embodiments of the present disclosure, Exemplary Glasses B may also have a refractive index at 587.56 nm ng from 1.85 to 2.1.
[00126] According to some embodiments of the present disclosure, Exemplary Glasses B may also satisfy the following formula: {ng-1)/dgr - {0.269 - 0.12 * T}) > 0.00, where (n;-1)/dkr is a refractive index to density ratio ("refraction") (cm®/g), and Tis a transmittance index.
[00127] According to some embodiments of the present disclosure, Exemplary Glasses B may also satisfy the following formula: {na-1)/dpr - (0.274 -0.12 * T}} > 0.00, where {ng-1)/dgr is a refractive index to density ratio ("refraction") (cm?/g), and T;is a transmittance index.
[00128] Table 5 identifies the combination of components and their respective amounts according to some embodiments of the present disclosure. The Exemplary Glasses C in Table 5 may include additional components according to any aspects of the present disclosure as described herein.
Table 5: Exemplary Glasses C
[00129] Exemplary Glasses C according to embodiments of the present disclosure may satisfy the following condition: B203+Si0;-P;0s [mol.%] > 0.50, where chemical formulas refer to the amounts of components in glass, expressed in mol.%.
[00130] According to some embodiments of the present disclosure, Exemplary Glasses C may also have a glass transition temperature T, [°C] from 500 to 700.
[00131] According to some embodiments of the present disclosure, Exemplary Glasses C may also have a density at room temperature dg; [g/cm’] of less than or equal to 6.
[00132] According to some embodiments of the present disclosure, Exemplary Glasses C may also satisfy the following formula: Ng - (1.571 + 0.083 * diy} > 0.00, where ng is a refractive index at 587.56 nm, and der is a density at room temperature (g/cm’).
EXAMPLES
[00133] The following examples describe various features and advantages provided by the disclosure, and are in no way intended to limit the invention and appended claims.
[00134] To prepare the glass samples for some exemplary glasses of the present disclosure, about 15 grams of each sample (content of intended components in the as-batched composition was more than 99.99 wt %) was melted from batch raw materials at a temperature of about 1300 °C in platinum or platinum-rhodium crucibles (Pt:Rh=80:20) for 1 hour. Two controlled cooling conditions were applied. In the first condition (referred to as "15 min test" or "15 min devit test"), it took about 15 min for the samples to cool from 1100 °C to 500 °C inside a furnace. In the second condition (referred to as "2.5 min test" or "2.5 min devit test"), it took about 2.5 min for the samples to cool from 1100 °C to 500 °C in air inside a furnace. Temperature readings were obtained by direct reading of the furnace temperature or using an IR camera reading with calibration scaling. The first condition {15 min test} approximately corresponds to the cooling rate of up to 300 °C/min at a temperature of 1000°C and the second test approximately corresponds to the cooling rate of up to 600 °C/min at 1000 °C (near to this temperature, the cooling rate approached the maximum). When the temperature is lower, the cooling rate also decreases significantly. Typical schedules of the first and second cooling regimes are shown in FIG. 6. For these samples, observations referred to as "15-min devit test" and "2.5- min devit test", are specified in Table 6 below; the observation "1" is used to denote that a glass composition passed the indicated devit test, where a composition is deemed to have passed the indicated devit test if a melt of the composition forms a glass free of crystals visible under an optical microscope under magnification from 100x to 500x. The observation "0" is used to denote that a glass composition failed the indicated devit test.
[00135] To prepare other glass samples for exemplary glasses of the present disclosure, unless otherwise specified, a one kilogram batch of the components was prepared in a pure platinum crucible. The crucible was placed in a furnace set at a temperature of 1250°C, after which, the temperature in the furnace was raised to 1300°C and held at 1300°C for 2 hours. The furnace temperature was then reduced to 1250°C and the glass was allowed to equilibrate at this temperature for an hour before being poured on a steel table followed by annealing at Tg for an hour.
[00136] Some sample melts were also melted in a "one liter” platinum crucible heated by Joule effect. In this process, approximately 3700 g of raw materials was used. The crucible was filled in 1.5 hours at 1250°C. The temperature was then raised to 1300°C and held for one hour. During this step, the glass was continuously stirred at 60 rpm. The temperature was then decreased to 1200°C where it was allowed to equilibrate for 30 minutes and the stirring speed was decreased to 20 rpm. The delivery tube was heated at 1225°C and the glass was cast on a cooled graphite table. The glass was formed into a bar of approximately 25 mm in thickness, 50 mm in width, and 90 cm in length. The prepared bars were inspected under an optical microscope to check for crystallization and were all crystal free. The glass quality observed under the optical microscope was good with the bars being free of striae and bubbles. The glass was placed at Tg in a lehr oven for 1 hour for a rough annealing. The bars were then annealed in a static furnace for one hour at Tg and the temperature was then lowered at 1°C/min.
[00137] Some of samples were bleached after melting to improve the transmittance. Bleaching process was performed at the temperatures between 500°C and the crystallization onset temperature T,. When the temperature is less than about 500°C, the bleaching process may take too long time because of its slow rate. When the temperature of bleaching exceeds T,, the glass may crystallize when heat-treating. The higher the bleaching temperature, the faster the bleaching process goes, but the lower value of resulting transmittance can be obtained.
[00138] No chemical analysis of the tested samples was performed because chemical analysis was performed for similar samples prepared in independent meltings by XRF method (X- ray fluorescence - for all oxides, except for B203 and Li,0}, by ICP method (inductively coupled plasma mass spectrometry - for B,0s) and by FES method (flame emission spectrometry - for Li,0). These analyses gave deviations from the as-batched compositions within +2.0 mass % for the major components such as Nb;0; which is equivalently less than about 1 mol%. In Tables 6 and 7, the abbreviation "n" with a subscript refers to the refractive index at a corresponding wavelength in nm; for example, ns328 nm refers to the refractive index at wavelengths of 632.8 nm. T, refers to the crystallization onset temperature.
[00139] For some of Exemplary Glasses, including the Exemplary Glass 1, the liquidus temperature was measured by using several of the above-specified methods, including the gradient boat test with observation of the resulting material by a naked eye, and isothermal tests for 24 hours with observation of the resulting material under an optical microscope. Both methods provided the results that were consistent with each other within £7°C.
Table 6. Exemplary Glass Compositions es EE EEE B,0; mol. | 3298 [3298 [3298 |3387 |2796 |2848 |2893 29.35 DEP Pe Pee Ae ee WO; mol. 15.99 15.99 15.99 12.11 | 6.99 5.05 3.56 2.05
OE La:0; mol. 19.99 19.99 19.99 | 20.00 | 2496 [2494 2494 |2494 Re TiO, mol. | 8.99 8.99 8.99 9.29 16.97 16.97 16.95 16.95 co Nb:0; | mol. 15.00 15.00 15.00 16,45 | 8.48 9.17 9.70 10.25
NF SiO; mol. | 0.0301 | 0.0301 | 0.0301 | 1.27 7.48 8.03 8.45 8.89
CE ZrQ, mol. | 7.00 7.00 7.00 7.00 6.99 7.12 7.22 7.33
CE CeO; mol. [0 0 0 0.15 0.15 0.15 0.15 SEL Pee CaO mol. [0 0 0 0.0297 | 0.0387 | 0.0583 | 0.0578 CED DD eeen Na,O mol. | 0 0 0 0.0266 | 0.0264 | 0.0261 i Gl Ta,0s mol. | 0.0123 | 0.0123 | 0.0123 | 0.016 | 0.0075 | 0.0075 | 0.0074 | 0.011 "EE TiO; + | mol. | 2399 [2399 |2399 |2574 |2547 |26.15 26.67 | 27.21 a RE:0; | mol. | 6698 | 6698 66.98 | 64.84 | 6450 | 6337 |6250 | 61.63 +7r0, | % + TiO, + Nb, Os + WO; WO; + | mol. | 2498 [2498 |2498 |21.39 [2397 [2203 20.52 19.01 wo CTT as EEE JE R,O + mol. 0 0 0 0.0297 | 0.0853 | 0.0846 | 0.0839 oo ee TiO, - mol. 8.963 8.963 8.963 8.015 | 9.492 8.943 8.503 8.059 ll ll B:0;+ | mol. | 33.01 33.01 33.01 35.14 | 35.46 36.53 37.41 38.27 S10; - % P,Os SiO, + | mol. 0.0301 | 0.0301 | 0.0301 | 1.270 | 7.487 8.036 8.460 8.900 Sl pee [me] fg EC [seo [so aw [sow (ng- cm’/g | 0.1976 0.1953 we LET 15-min 1 1 1 1 devit test (0/1) Tw [© [wa | LL LOL Ts °C 638.90 | 642.30 | 644.00 | 644.0 | Log(Mig 0.8062
LL ae [LT ny - 0.0546 (1.437 +
0.0005 * Tig) ng - 0.0106 (1.481 +
0.0005 * Tig) (ng- 0.0057 -0.0011 mel PT LP LL
SE [1 [2 [5 [J [7 [5 (0.269 -
0.12 * T) (ng- 6.800E -0.0061 1)/drr - -04 (0.274 -
0.12 * Ty) ng - 0.0121 7.700E (1.571 + -04
0.083 * der) TT [ee [oes [ows [ows [ower [uss [057 [os P, [for 2.035 2.035 2.035 2.031 | 2.0079 | 2.0053 | 2.0032 | 2.0012 El lll Pur [for | cm’/g | 0.2027 | 0.2027 | 0.2027 | 0.207 | 0.1975 | 0.1998 | 0.2015 | 0.2033 1)/dr7] Prs[for | °C 665.9 665.9 665.9 6723 | 707.8 710.9 713.3 715.8 CF ll ll Py [for g/m’ | 5.2082 | 5.2082 | 5.2082 | 5.065 | 5.1082 | 5.038 4.9839 | 4.9291 Fl lll Pes - 0.0107 | 0.0107 | 0.0107 | 0.011 | 0.0011 | 0.0012 | 0.0012 | 0.0012 (0.269 - 1
0.12 * Ty) Ps - 0.0057 | 0.00537 | 0.0057 | 0.006 | -0.0039 | -0.0038 | -0.0038 | -0.0038 (0.274 - 1
0.12% Ty) P,- 0.0317 | 0.0317 | 0.0317 | 0.039 | 0.0129 | 0.0161 | 0.0185 | 0.0211 (1.571 + 8
0.083 *
es EEE EE PM [LLL LLL Table 6 Continued Exemplary 9 10 11 12 13 14 15 16 a TOPPOP B,O; |mol. | 2796 (2852 |2795 27.97 28.43 27.96 | 28.45 28.86
TEE WO; | mol. | 6.99 5.03 7.09 10.07 6.86 13.97 10.46 7.57
OE La;0; | mol. | 2496 | 21.61 21.45 20.81 23.14 19.98 | 2249 | 2453
OE TiO, | mol. 16.97 16.97 19.91 18.20 18.14 15.97 15.98 15.97
TT Nb:O; | mol. | 8.48 9.19 8.74 8.85 8.85 8.98 8.98 8.98 OE ee SiO, |mol. | 7.48 8.60 7.47 6.82 7.15 6.00 6.36 6.69
OE Bi0; | mol. 2.80 0 0 0 i DP PPP ZrO, |mol. |6.99 7.12 7.23 7.13 7.25 6.99 7.11 7.22
OEP CeO, |mol. | 0.15 0.13 0.13 0.12 0.14 0.12 0.14 0.15
TP CaO | mol. | 0.0297 | 0.0298 | 0.0283 | 0.0289 | 0.029 | 0.0296 | 0.0298 | 0.0299 I Ne Ta:Os | mol. | 0.0075 | 0.0076 | 0.0072 | 0.0073 | 0.0074 | 0.0075 | 0.0076 | 0.0076 UE ee TiO, | mol. | 2547 |2618 |28.67 |27.06 27.01 2496 | 2498 | 2497 + % Nb,Os + %
Exemplary 9 10 11 12 13 14 15 16 a PPPN 710, + TiO, + Nb,Os + WO; WO: | mol. 23.97 | 22.01 27.02 28.29 25.02 29.96 26.45 23.56 + % TiO, R;O + | mol. 0.0297 | 0.0298 | 0.0283 | 0.02888 | 0.0290 | 0.0296 | 0.0297 | 0.0298 woo [RL TiO; - | mol. | 9.492 8.380 12.45 11.39 11.00 9.97 9.627 | 9.291 ll B,O; | mol |3546 |37.15 35.44 34.80 35.60 33.97 | 34.83 35.57 + Yo S10; - P,Os SiO; | mol. 7.487 | 8.602 7.474 6.819 7.152 6.001 6.364 6.693 + % GeO, TTT [mT a Jef [se [sw [sie sey [si (ng- cm’/g 0.1963 oT LLL RT 15- 1 1 min devit test (0/1) {ng- 0.0021 Wl | LL
Exemplary 9 10 11 12 13 14 15 16
EO (0.269 -0.12 *T) (ng- -0.0029 dg (0.274 -0.12 *T) ng - 0.0083 (1.571 +
0.083 * drt) Tom [ose [uss [uses [uso [oan [or [oan P, [for 2.0079 | 2.0119 | 2.0002 | 2.0011 | 2.0038 | 2.0022 | 2.0053 | 2.0075 El dl Per cm’/g | 0.1975 | 0.202 0.2058 | 0.2034 | 0.2018 | 0.2004 | 0.1988 | 0.1975 [for (ng- D)/der
I Pr °C 707.8 681.7 696.1 6806.6 701.8 674.2 690.8 704.2 [for T] Py [for | g/cm’ | 5.1082 | 5.0701 | 4.8875 | 49591 | 49913 | 5.0522 | 5.0848 | 5.1096 Fl dl Per 0.0011 | 6.500E | 0.0034 | 0.0045 | 0.0024 | 0.0059 | 0.0037 | 0.0019 (0.269 -04 -0.12 * Ty
Exemplary 9 10 11 12 13 14 15 16
EE A Par - -0.0039 | -0.0044 | -0.0016 | -4.700E | -0.0026 | 9.400E | -0.0013 | -0.0031 (0.274 -04 -04 -0.12 *T) Py - 0.0129 | 0.0201 | 0.0235 | 0.0184 | 0.0186 | 0.0119 | 0.0122 | 0.0124 (1.571 +
0.083 * Po) Table 6 Continued Exemplary 17 18 19 20 21 22 23 24 Ei B;0; |mol. | 3132 30.22 29.19 29.66 27.95 28.46 28.89 | 30.21
DE WO; | mol. 6.50 10.94 15.04 10.11 19.98 14.76 10.59 10.92
CE La,O; | mol. 19.97 19.97 19.97 19.96 19.98 19.97 1997 | 21.96 Ee ee TiO; | mol. 16.97 16.98 16.97 16.97 16.98 16.98 16.98 19.95
CE Nb,Os | mol. 12.72 10.51 8.46 6.84 5.99 443 3.18 10.51 ET Ie Si0; | mol. 5.37 4.24 3.23 4.72 1.99 3.57 4.81 6.27
PE Bi0; | mol. 0 0 4.59 0 4.68 8.44 0 i DE ZrO, | mol. 6.98 6.99 6.99 6.99 6.98 6.99 6.99 El %
Exemplary 17 18 19 20 21 22 23 24 El CaO [mol | 0.0288 | 0.0293 | 0.0298 | 0.031 0.0304 | 0.0316 | 0.0326 | 0.0296
NE Ta,Os | mol. | 0.011 0.0112 | 0.0076 | 0.0079 | 0.0039 | 0.004 | 0.0041 | 0.0113
CE TiO, |mol. | 29.72 27.50 | 2545 | 23.82 2299 | 2142 | 20.17 |3049 + % Nb,Os RE.O | mol. | 63.24 65.48 | 67.33 | 60.97 70.01 63.22 | 37.80 | 63.46 37+ % ZrQ, + TiO: + Nb, Os + WO; WO; [mol | 23.48 27.93 32.02 |27.10 36.98 | 31.76 | 27.59 | 30.89 + % TiO, R;0+ | mol. | 0.02880 | 0.0293 | 0.0298 | 0.03104 | 0.0304 | 0.0316 | 0.0326 | 0.02960 Ll ll TiO, - | mol. | 11.61 12.74 | 13.75 12.25 15.00 13.41 12.18 | 13.70 wo [© B,O; [mol | 36.72 3448 | 3244 | 34.40 29.95 | 3205 |3371 |36.50 + % Si0;- P;05 SiO, | mol. | 5.376 4243 |3.229 | 4.722 1986 [3.572 |4811 (6.271 + % GeO; CO cc Ee RO
Exemplary 17 18 19 20 21 22 23 24 a PP een [ev zn an [sa ee [55 | (ng- cm’/g | 0.20489 0.1901 mee | LE (ng- -5.500E 0.0017 1)/der -04 (0.269 -0.12 * Ty) (ng- -0.0055 -0.003 Dy/dgr 3 (0.274 -0.12 *T) ng - 0.0221 -0.007 (1.571 3 +
0.083 * drt) TT [ose [am [oww Toor [oa [own [us Pa 2.0075 | 2.0078 | 2.008 | 2.0209 | 2.0083 | 2.0215 | 2.0323 | 2.0078 ng] Pier cm’/g | 0.2121 | 0.2056 | 0.1996 | 0.1953 | 0.1924 | 0.1882 | 0.1849 | 0.2067 [for (ng- 1)/dr
I Prs °C 688.0 680.6 | 673.9 656.6 665.7 | 648.4 634.6 | 682.4 [for
TJ
Exemplary 17 18 19 20 21 22 23 24 El Pa gem’ | 4.7991 | 49536 | 5.0961 | 53011 | 5.2677 | 54703 | 5.6342 | 4.9232 der] Pier - 0.0066 | 0.0061 | 0.0053 | -6.800E | 0.0039 | -0.001 | -0.006 | -3.200E (0.269 -04 5 0 -05 -0.12 *T) Pies - 0.0016 | 0.0011 | 3.300E | -0.0057 | -0.001 | -0.006 | -0.011 | -0.0050 (0.274 -04 1 5 0 -0.12 * Ty P,- 0.0381 | 0.0256 | 0.0140 | 0.0100 | 3.400E | -0.003 | -0.006 | 0.0281 (1.571 -05 6 3 +
0.083 * Py) Table 6 Continued Exemplary 25 26 27 28 29 30 31 32
PPE B,O; | mol. | 2796 | 27.05 27.96 2639 | 27.12 | 2793 25.76 26.49 CE ee ee WO; | mol. 13.97 16.71 16.58 18.68 18.90 18.53 20.57 20.70
TT La:0; | mol. 19.98 19.97 19.97 19.97 19.97 19.97 19.97 19.97 0 TiO, | mol 15.97 15.98 14.23 15.97 14.39 12.95 15.98 14.42
TT Nb,Os | mol. | 8.98 7.77 8.98 6.89 7.85 8.98 6.05 7.04 Ee
Exemplary 25 26 27 28 29 30 31 32 a PPP PPP
ET ZO: | mol. 6.99 6.99 6.99 7.00 6.98 6.99 6.99 6.98 ll CeO: | mol. 0.12 0.12 0.12 0.12 0.12 0.12 0.12 0.12 CE Je CaO mol. 0.0296 | 0.03 0.0304 | 0.0303 | 0.0306 | 0.0309 | 0.0305 | 0.0309 Nl dll Ta,Os | mol. 0.0075 | 0.0076 | 0.0077 | 0.0077 | 0.0078 | 0.0078 | 0.0039 | 0.0078
SE TiO, | mol. 24.96 23.76 23.23 22.88 22.25 21.95 22.05 21.47 + % Nb, Os REO; | mol. 65.99 67.52 66.85 68.61 68.20 67.52 69.66 69.22 + % ZrO, + TiO» + Nb;0; + WO; WO: | mol. 29.96 32.71 30.83 34.67 33.31 31.50 36.57 35.13 + % TiO, RO + | mol. 0.0296 | 0.0300 | 0.0303 | 0.0302 | 0.0306 | 0.0309 | 0.03053 | 0.0309
OE TiO; - | mol. 9.97 10.61 9.110 11.04 9.761 8.486 11.46 10.19 Pl ll B;0; | mol. 33.97 32.45 33.11 31.36 31.77 32.44 30.31 30.75 + % SiO; - POs
Exemplary 25 26 27 28 29 30 31 32 a SiO, |mol. | 6.001 3377 | 5130 | 4945 (4634 | 4473 4.531 4.239 + vo GeO, weer TT oo Jv sw | few [sae ses [see | (ng- cm’/g | 0.1949 ve LO 15- 1 1 1 min devit test (0/1) (ng- 4 800E der -04 (0.269 -0.12 * T) (ny- -0.0045 1)/dg (0.274 -0.12 * Ty ng - -0.0045 (1.571 +
0.083 * dry) TT [oe [ver [oer Tow [oo Town [ums [ows Pie] [own [zoon [awe [zo [as aos [20m [sor
Exemplary 25 26 27 28 29 30 31 32
SPOP PP [for (De D)/der
I Pr, °C 674.2 669.9 668.3 666.8 664.8 663.9 663.8 662.0 [for T.l Py [for g/cm’ 5.0522 | 5.151 5.1547 | 5.2221 | 5.2381 | 5.232 5.2906 | 5.3033 Pl ll ll ll Pres - 0.0059 | 0.0035 | 0.0064 | 0.0051 | 0.0058 | 0.0067 | 0.0046 | 0.0054 (0.269 -0.12 *T) Pret - 9.400E | 4.700E | 0.0014 | 4800E | 8400E | 0.0017 | -4.300E | 3.800E (0.274 -04 -04 -05 -04 -04 -04 -0.12 * Ti) P,- 0.0119 | 0.00537 | 0.0069 | 0.0012 | 0.0016 | 0.0033 | -0.0032 | -0.0025 (1.571 +
0.083 * Py) Table 6 Continued Exemplary 33 34 35 36 37 38 39 40 ar PPD B,O; | mol. 27.11 27.96 24.96 25.78 26.41 27.07 27.95 27.95
OE
Exemplary 33 34 35 36 37 38 39 40 a POPP PP
RE La:0; | mol. 19.97 19.97 19.96 19.96 19,96 19.97 19.97 19.97
OE TiO: | mol. 13.20 11.65 15.98 14.35 13.08 11.77 9.98 9.98 CE Pee Pe Nb,Os | mol. 7.86 8.99 4.99 6.08 6.92 7.79 8.99 8.99 Ee S10, mol. 4.04 3.84 4.00 3.73 3.52 3.29 3.00 3.00 Ee ZrO, | mol. 6.99 6.98 6.99 6.99 6.99 7.00 7.00 7.00
PEP PP CeO, | mol. 0.12 0.12 0.12 0.12 0.12 0.11 0.12 0.12
NF NO CaO mol. 0.0311 | 0.0314 | 0.0308 | 0.0312 | 0.0315 | 0.0318 | 0.0322 | 0.0322 Dd Ta; Os | mol. 0.0079 | 0.008 0.0039 | 0.004 0.008 0.0081 | 0.0082 | 0.0082 CE ee [ere TiO, | mol. 21.08 20.65 20.98 20.43 20.01 19.58 18.98 18.98 + % Nb, Os RE:0: | mol. 68.79 68.14 70.98 70.44 70.01 69.59 68.99 68.99 + % 710, + TiO, + Nb,Os + WO; WO; | mol. 33.88 32.12 38.96 37.33 36.06 34.75 32.96 32.96 + % TiO,
Exemplary 33 34 35 36 37 38 39 40 El A R,O+ | mol. | 0.0311 | 0.03146 | 0.0308 | 0.03122 | 0.0314 | 0.0317 | 0.0321 | 0.0321 wo LE TiO; - | mol. | 9.170 | 7.814 11.98 10.63 9.560 | 8.487 | 6.981 6.981 ll B:0; |mol. |31.17 |31.82 28.98 | 29.53 29.95 | 30.37 | 3097 |3097 + Yo SiO, - P,0s SiO; |mol. | 4.042 | 3.846 4.003 | 3.729 3.526 | 3.292 |3.003 3.003 + % GeO, TI Te a EE | few [sen sar (ng- |cm/g 0.1859 mL LRT 15- 1 1 1 min devit test (0/1) EEL ee BE LLL eee ng - 0.0134 (1.437 +
0.000 * Tig) ny - -0.0306 (1.481 +
0.000
Exemplary 33 34 35 36 37 38 39 40 El w | LL {ng- 0.004 D)/drT (0.269 -0.12 * T;) (ng- -0.001 1)/dr7 (0.274 -0.12 *T) ng - -0.0234 (1.571 +
0.083 * der) TT [von [vow Jom [arr [om Jom [me [om P, [for 2.0098 | 2.0111 | 2.0087 | 2.0102 | 2.0115 | 2.0129 | 2.0147 | 2.0147 ST] PT Pier cm’/g | 0.1919 | 0.1924 | 0.1884 | 0.1886 | 0.1888 | 0.189 0.1893 | 0.1893 [for (ng- 1)/dry
I Pre °C 660.8 639.5 660.0 658.3 657.0 655.7 653.9 653.9 Ty Py [for | g/em’ | 53079 | 5.3074 | 5.3768 | 5.383 3.391 5.3982 | 5.4074 | 5.4074 Fl
Exemplary 33 34 35 36 37 38 39 40 El A Ps - 0.0061 | 0.0070 | 0.0039 | 0.0048 | 6.0055 | 0.0062 | 0.0072 | 0.0072 (0.269 -0.12 *T) Pre - 0.0011 | 0.0020 | -0.0011 | -2.200E | 4.800E | 0.0012 | 0.0022 | 0.0022 (0.274 -04 -04 -0.12 *T) Pa - -0.0017 | -4.000E | -0.0086 | -0.0077 | -0.0070 | -0.0062 | -0.0051 | -0.0031 (1.571 -04 +
0.083 * Py) Table 6 Continued Exemplary 41 42 43 44 45 46 47 48 a PPPN B:0; | mol. 26.72 27.96 25.84 27.95 21.27 21.18 21.60 | 27.97
CE WO; | mol. 26.34 25.93 28.73 28.11 14.41 19.46 19.32 | 13.99
OE La;0; | mol. 21.50 20.86 22.59 21.52 20.95 20.95 20.95 | 19.99
OE TiO, | mol. 9.97 7.01 9.99 4.84 14.30 10.25 11.35 | 15.98
CE Nb,Os | mol. 6.23 8.98 4.26 8.99 9.48 9.48 9.48 8.99 Eee S10, mol. 2.09 2.12 1.43 1.44 8.78 7.66 8.17 5.97
OEI %
Exemplary 41 42 43 44 45 46 47 48 El A Y,0; | mol. 0 0 0.38 0.43 0.21 0 cer Ere BaO mol. |0 0 0 2.87 3.20 1.53 0.0108 cel Pr CeO, | mol. |0.13 0.12 0.13 0.12 0.12 0.13 0.13 0
CE SrO mol. 0 0 0.0167 [0.0175 | 0.017 | 0 cer FP ET CaO | mol. 0.0329 | 0.0334 | 0.0334 | 0.0343 | 0.0309 | 0.0323 | 0.032 | 0.0592
TP SiCly | mol. 0 0 0.0391 cer PP Na,O | mol. [0 0 0 0 0.0279 [0.0292 | 0.028 | 0 cel PPE PT Ta,Os | mol. | 0.0042 | 0.0085 | 0.0042 | 0.0087 | 0.0078 | 0.0082 | 0.008 | 0.0075
EE TiO, | mol. 16.21 16.00 14.25 13.84 23.79 19.74 | 20.84 | 24.97 + % Nb,Os RE:0; | mol. | 71.14 69.86 72.67 70.53 66.98 67.85 68.59 | 65.94 + % ZITO, + TiO, + Nb, Os + WO; WO; | mol. |3633 32.95 38.74 32.97 | 28.72 29.73 30.69 | 29.97 + % TiO,
Exemplary 41 42 43 44 45 46 47 48 a PPP SEF rv LIE TiO, - | mol. 7.889 4.890 8.558 3.400 5.516 2.594 3.182 | 10.02 ee B:0; | mol. 28.83 30.09 27.30 29.40 30.07 28.86 29.79 | 33.94 + SiO; | % - P:0; SiO; + | mol. 2.088 2.119 1.434 1.441 8.788 7.663 8.177 | 5.969 a lll EE san EL 15- 1 1 1 min devit test (0/1) To ce [LTL || B ej TL LL LL | lll 9 P, [for 2.0163 | 2.0203 [2.0175 | 2.0248 | 2.0282 | 2.0317 | 2.029 | 2.0023 Ell Pres cm’/g | 0.1802 | 0.1833 | 0.1738 | 0.179 0.1965 | 0.1893 | 0.192 | 0.2004 [for 1 (ng- 1)/drr
I Pre °C 654.7 649.8 655.3 646.9 681.2 668.7 668.8 | 674.3 [for
TJ Py [for | gm’ | 5.6163 | 5.582 5.7646 | 5.712 52913 | 5.493 5425 | 5.0529 ar EL Pe: | [00039 JO0068 [0.0013 [006d [0004s [0s |0006 | 0.009 |
Exemplary 41 42 43 44 45 46 47 48 a PPP (0.269 5 -0.12 *T) Peer - -0.0011 | 0.0018 | -0.0037 | 0.0014 | -3.900E | 8.200E | 0.001 | 9.300E (0.274 -04 -05 5 -04 -0.12 *T) Py - -0.0208 | -0.0140 | -0.0320 | -0.0203 | 0.0181 | 0.0048 | 0.008 | 0.0119 (1.571 1 +
0.083 * Pg) Table 6 Continued Exemplary 49 50 51 52 53 54 55 56 a A A A B;0; | mol. 27.02 27.98 26.36 27.09 27.97 25.73 26.47 27.10
CE WO: | mol. 16.86 16.67 18.84 19.04 18.64 20.71 20.81 20.77
NE HH La,O; | mol. 19.99 19.98 19.98 19.99 19.99 19.99 19.98 19.99 Ee TiO, | mol. 15.99 14.20 15.98 14.38 12.87 15.99 14.44 13.21
CE Nb,Os | mol. 7.72 8.99 6.83 7.82 8.99 6.01 7.00 7.83
OE SiO; | mol. 532 5.07 4.89 4.58 4.42 4.47 4.18 3.98 cE ZrO, | mol. 6.99 6.99 7.00 6.99 7.00 6.99 7.00 6.99 cee eee te
Exemplary 49 50 51 52 53 54 55 56 a PPP A NE HN ll SiCl4 | mol. 0.0396 | 0.0401 | 0.04 0.0405 | 0.0408 | 0.0403 | 0.0408 | 0.0411 Eee | ee Pe Ta:05 | mol. 0.0076 | 0.6077 | 0.0077 | 0.0078 | 0.0078 | 0.0039 | 0.0078 | 0.0079 Hi ll TiO, | mol. 23.70 23.18 22.82 22.20 21.87 22.00 21.44 21.04 + % Nb,Os REO; | mol. 67.54 66.83 68.63 68.21 67.49 69.68 69.23 68.79 + % 710, + TiO, + Nb,Os + WO; WO; | mol. 32.85 30.87 34.82 33.42 31.52 36.70 35.25 33.98 + % TiO, R:0+ | mol. 0.0709 | 0.0718 | 0.0716 | 0.0725 | 0.0731 | 0.07223 | 0.0730 | 0.0737 oo ETL TiO, - | mol. 10.67 9.124 11.09 9.798 8.458 11.52 10.26 9.226 Pl ll B;0O; | mol. 32.34 33.05 31.25 31.67 32.39 30.20 30.65 31.08 + % SiO; - POs S10; mol. 5.321 5.073 4.888 4.578 4.416 4.474 4.180 3.983
SE
Exemplary 49 50 51 32 33 54 55 56 a PPP PP 15- 1 1 1 1 min devit test (0/1) EE ene en ELL Jew] Jee] DE cc i LB P, [for 2.0044 | 2.0059 | 2.0058 | 2.0076 | 2.0087 | 2.0073 | 2.0089 | 2.0101 Fl ld Pres cm’/g | 0.1965 | 0.1971 | 0.1939 | 0.1939 [0.1946 | 0.1914 | 0.1915 | 0.1917 [for (ng- 1)/dry
I Pre °C 669.7 668.2 666.6 664.6 663.7 663.7 661.9 660.7 [for Td Pa [for | gem’ | 5.1569 | 5.1584 | 5.2282 | 5.244 3.2369 | 5.2964 | 53077 | 3.3128 or [7 Pret - 0.0054 | 0.0064 | 0.0050 | 0.0058 | 0.0067 | 0.0045 | 0.0034 | 0.0060 (0.269 -0.12 *T) Pier - 4300E | 0.0014 | 6.800E | 8.200E | 0.0017 | -4.700E | 3.500E | 0.0010 (0.274 -04 -06 -04 -04 -04 -0.12 * Ty) P| [woes [oes [soe [ovo [wt os | ws | aon.
Exemplary 49 50 51 32 33 54 55 56 a PP (1.571 -04 +
0.083 * Py) Table 6 Continued Exemplary 57 58 59 60 61 62 63 64 Eo B,O; | mol. | 27.97 2497 | 25.78 2641 | 27.06 |2796 |31.41 29.82
TE WO; | mol. | 20.54 2299 | 2298 2298 [2298 | 2298 11.40 15.38 ll Pe La;0; | mol. 19.98 19.99 19.98 19.99 19.98 19.98 19.98 19.99 OR ll TiO, | mol. 11.62 15.98 14.39 13.12 11.82 10.00 16.98 16.98
EI Nb,Os | mol. | 8.99 5.00 6.06 6.90 7.78 8.99 10.29 | 8.30 em SiO; |mol. | 3.79 3.97 3.70 3.50 3.26 2.97 2.83 242
OE ZrO, |mol. | 699 6.99 7.00 6.99 7.00 6.99 7.00 7.00
SED BaO |/mol. | 0.0115 | 0.0113 | 0.0114 | 0.0115 | 0.0116 | 0.0118 | 0.0108 | 0.0109 DE ee en ee er CaO | mol. | 0.0629 | 0.0617 | 0.0624 | 0.0629 | 0.0635 | 0.0643 | 0.0588 | 0.0597
TE SiCl4 | mol. | 0.0415 | 0.0407 | 0.0412 | 0.0416 | 0.0419 | 0.0424 | 0.0388 | 0.0394 Pe JE [ee ee ee eee en Pe Jo Ta,Os | mol. | 0.008 0.0039 | 0.004 0.008 | 0.0081 | 0.0082 | 0.0112 | 0.0076 UE ee
Exemplary 57 58 59 60 61 62 63 64 a A A TiO, |mol. | 20.61 20.98 | 20.45 20.02 19.59 18.99 | 27.26 25.28 + % Nb,Os RE:0; | mol. | 68.11 70.94 70.41 69.97 | 69.55 68.94 65.64 67.64 + % ZITO, + TiO, + Nb,Os + WO; WO; |mol. (32.15 38.97 | 37.37 36.10 | 34.80 |3297 |2838 32.35 + % TiO, R,O+ | mol. | 0.07442 | 0.0729 | 0.07379 | 0.0744 | 0.0751 | 0.0760 | 0.0695 | 0.0706 dd Fl TiO, - | mol. 7.829 12.01 10.69 9.627 | 8.553 7.027 14.15 14.55 Pl el BO; | mol. | 31.76 28.94 | 29.47 29.91 30.32 | 30.93 34.24 32.24 + Yo Si0; - ien SiO; |mol | 3.788 3.973 3.697 3.495 3.260 | 2.970 |2.825 2.424 + % GeO, Cl a cc I 15- 1 1 1 1 1 min devit test (0/1)
Exemplary 57 58 59 60 61 62 63 64 a PP Eee ee Epe eee
EN P, [for 20113 | 2.0089 | 2.0104 | 2.0116 | 2.013 2.0148 | 2.0072 | 2.0077
STP Per cm’/g | 0.1923 | 0.1884 | 0.1886 | 0.1888 | 0.189 0.1893 | 0.2046 | 0.1989 [for (ng- 1)/dr
I Pig °C 659.4 660.0 658.4 657.1 655.8 653.9 679.7 673.3 [for
TJ Py [for | gem’ | 53112 [53780 | 53863 | 5.3924 [5.3993 [5.4078 | 4.9674 | 5.1072 ar | Oe ee Pret - 0.0070 | 0.0039 | 0.0048 | 0.0054 | 0.0062 | 0.0072 | 0.0058 | 0.0051 (0.269 -0.12 *T) Par - 0.0020 | -0.0011 | -2.500E | 4.400E | 0.0012 | 6.0022 | 7.900E | 9.600E (0.274 -04 -04 -04 -05 -0.12 *T) Pu - -4.900E | -0.0086 | -0.0077 | -0.0070 | -0.0061 | -0.0051 | 0.0239 | 0.0128 (1.571 -04 +
0.083 * Po)
Table 6 Continued Exemplary 65 66 67 68 69 70 71 72
KE A B;0; | mol. 27.98 28.97 30.67 30.75 32.09 32.38 32.19 33.66
DE WO: | mol. 19.99 15.99 12.11 15.99 8.86 12.22 15.98 5.29 Ee [Ie EJ La;0; | mol. 19.99 19.98 19.98 19.99 19.98 19.99 19.98 19.99 CE Pe TiO, | mol. 16.98 16.97 16.98 12.67 16.98 12.72 9.16 16.97 cE Nb,Os | mol. 5.99 9.99 11.44 12.79 12.66 14.15 15.06 14.01
ET SiO; | mol. 1.96 0.97 1.71 0.71 2.31 1.41 0.51 2.97
EEE ZrO, | mol. 7.00 7.00 6.99 6.99 6.99 7.00 6.99 6.99 cE BaO | mol 0.0111 | 0.0112 | 0.011 0.0115 | 0.0108 | 0.0113 | 0.0118 | 0.0106
SE CaO | mol. 0.0608 | 0.0613 | 0.06 0.0631 | 0.059 0.0619 | 0.0646 | 0.0578
NE SiCl | mol. 0.0401 | 0.0405 | 0.0396 | 0.0417 | 0.0389 | 0.0408 | 0.0426 | 0.0382 Ee Ta:0; | mol. 0.0039 | 0.0078 | 0.0114 | 0.012 0.0112 | 0.0118 | 0.0123 | 0.0147 Hl ed dl TiO; | mol. 22.97 26.97 28.42 25.45 29.64 26.87 24.21 30.98 + % Nb;0; REO; | mol. 69.95 69.93 67.50 68.42 65.48 66.08 67.17 63.25 + % ZITO: + TiO,
Exemplary 65 66 67 68 69 70 71 72
OP PPP + Nb;0:; + WO; WO; | mol. 36,97 32.96 29.09 28.65 25.84 24.94 25.14 22.26 + % TiO, R,O + | mol. 0.07189 | 0.0724 | 0.0709 | 0.0746 | 0.0697 | 0.0731 | 0.0763 | 0.0684 Ll Fl TiO, - | mol. 15.02 16.00 15.27 11.96 14.67 11.31 8.643 14.00 ll B;0; | mol. 29.93 29.95 32.38 31.45 34.40 33.80 32.70 36.63 + % S10, - P,Os S10, | mol. 1.957 0.9723 | 1.708 0.7066 | 2.312 1.414 0.5121 | 2.969 + % GeO, a ee] [sw [om [sw [ss ew 15- 1 1 1 min devit test (0/1) je | LL ane [ta] ess [eere Toe Jos [us [we use [uo [ows [os P, [for 2.0083 | 2.031 2.0248 | 2.0346 | 2.0197 | 2.0285 | 2.0374 | 2.0142
PO Pier cm’/g | 0.1923 [0.2021 |0.2067 | 0.2027 | 0.2105 | 0.2071 | 0.2031 | 0.2147 [for (ng-
Exemplary 65 66 67 68 69 70 71 72 a PPP A 1)/dg7 Ed Prg °C 665.8 674.5 680.2 670.0 685.1 675.7 6606.4 690.4 [for Te] Py [for | gem’ | 5.2684 | 5.1781 | 5.0295 | 5.1986 | 49062 | 5.0546 | 5.2146 | 4.7702 ar | Pres - 0.0039 | 0.0068 | 0.0072 | 0.0090 | 0.0072 | 0.0093 | 0.0109 | 0.0069 (0.269 -0.12 *T) Par - -0.0011 | 0.0018 | 0.0022 | 0.0040 | 0.0022 | 0.0043 | 0.0039 | 0.0019 (0.274 -0.12 *T) Pu - -2.200E | 0.0302 | 0.0363 | 0.0321 | 0.0415 | 0.0380 | 0.0336 | 0.0472 (1.571 -05 +
0.083 * Po) Table 6 Continued Exemplary 73 74 75 76 77 78 79 a A B:0; | mol. 33.83 33.86 33.75 35.96 35.96 35.97 35.96 32.60
DE WO; | mol. 9.08 12.09 15.98 0 4.75 8.23 11.63 13.40
EI La,O; | mol. 19.98 19.98 19.98 19.98 19.98 19.99 19.98 20.90 OE Pe PE ee
Exemplary 73 74 75 76 77 78 79
KE A i ll S10, | mol. 2.02 1.24 0.28 3.98 2.79 1.89 1.06 0.0584 EP Ie ZrO, | mol. 7.00 7.00 7.00 7.00 6.99 6.99 6.99 6.99
RP BaO | mol. 0.0111 | 0.0116 | 0.0121 | 0.0103 | 6.0109 | 0.0114 | 0.0119 | O TE mmm mt CaO | mol. 0.0609 | 0.0633 | 0.0661 | 0.0561 | 0.0598 | 0.0625 | 0.065 0 cE SiCl, | mol. 0.0402 | 0.0418 | 0.0437 | 0.0371 | 0.0395 | 0.0412 | 0.0429 | O Ce Ta,Os | mol. 0.0155 | 0.0161 | 0.0168 | 0.0142 | 0.0152 | 0.0159 | 0.0165 | 0.0119
CE TiO, | mol. 27.98 25.70 22.88 32.97 29.40 26.80 24.25 26.04 + % Nb;0: RE;0: | mol. 64.03 64.77 65.84 59.94 61.12 62.01 62.84 67.33 + % ZITO: + TiO, + Nb.Os + WO: WO; | mol. 21.60 21.35 21.37 16.98 16.69 16.47 16.26 26.51 + % TiO, R;O + | mol. 0.0720 | 0.0748 | 0.0782 | 0.0663 | 0.0707 | 0.0738 | 0.0769 | 0 El FS i
Exemplary 73 74 75 76 77 78 79 a DP PO TiO; - | mol. 10.51 8.019 5.108 13.00 9.148 6.348 3.572 13.05 FE ll B:0; | mol. 35.84 35.10 34.02 39.94 38.75 37.86 37.03 32.66 + % S10; - P,0s5 SiO; | mol. 2.018 1.240 0.2778 | 3.981 2.789 1.894 1.062 0.0583 + % 9 GeO, eas [en 15- 1 1 1 1 1 1 1 1 min devit test (0/1) Tose [ve [ves [uw Tus Toso Joust Joa P, [for 2.0236 | 2.0311 | 2.0404 | 2.0057 | 2.0173 | 2.026 2.0341 | 2.0312 Pd OH Per cm’/g | 0.2108 | 0.2077 | 0.2036 | 0.221 0.216 0.2124 | 0.2088 | 0.2032 [for (ng- D)/der
I Pig °C 680.1 672.3 662.5 698.2 686.0 677.0 668.2 678.0 [for Tf Py [for | gem’ | 4.9346 | 5.0654 | 5.2322 | 4.5678 | 4.7728 | 49235 | 5.0688 | 5.1496 Fl ll dl Peer - 0.0094 | 0.0111 | 0.0129 | 0.0060 | 0.0093 | 0.0115 | 0.0135 | 0.0078 (0.269 -0.12
Exemplary 73 74 75 76 77 78 79 a PPP ee ee be (0.274 -04 -0.12 “T) Pu- 0.0430 | 0.0397 | 0.0352 | 0.0556 | 0.0502 | 0.0463 | 0.0424 | 0.0328 (1.571 +
0.083 * Py) Table 6 Continued Exemplary 81 82 83 84 85 86 87 88 Es BO; |mol. | 31.04 32.93 29.65 31.39 33.10 29.76 | 33.04 32.66 OEP Pe Pee Pe WO; | mol. 15.61 10.93 17.60 13.24 9.15 15.54 8.73 9.54
OE La;0; | mol. 18.25 21.10 15.87 18.48 21.03 15.67 | 21.58 21.21
OE TiO, | mol. 17.09 14.89 20.67 18.72 16.63 22.98 15.88 16.95 OE ee Nb,Os | mol. 10.94 13.08 9.15 11.11 13.03 9.00 13.11 12.61
NE HO SiO, |mol. | 0.0362 | 0.0574 | 0.0542 | 0.0552 | 0.0564 | 0.0529 | 0.0568 | 0.0565 dl ZrO, | mol. 7.00 7.00 7.00 6.99 7.00 7.00 7.60 6.96
PE Ta:O; | mol. | 0.0115 | 0.0117 | 0.0074 | 0.0113 | 0.0115 | 0.0072 | 0.0116 | 0.0115
SE
Exemplary 81 82 83 84 85 86 87 El PP TiO, | mol. 28.03 27.97 29.82 29.83 29.66 31.98 28.99 29.56 + % Nb,Os RE,Os | mol. 68.89 67.00 70.29 68.54 66.84 70.18 66.89 67.27 + Yo ZITO, + TiO, + Nb,Os + WO; WO; | mol 32.70 25.82 38.27 31.96 25.78 38.51 24.61 26.50 + % TiO, TiO; - | mol. 17.03 14.83 20.62 18.66 16.57 22.92 15.83 16.90 ef B:0; | mol. 31.10 32.99 29.71 31.45 33.15 29.81 33.10 32.72 + % S10; - P,0s Si0; | mol. 0.0561 | 0.0573 | 0.0541 | 0.0552 | 0.0563 | 0.0528 | 0.0567 | 0.0564 + % 6 8 5 4 9 5 6 9 GeO, ao [we [Son [sw [sow [sow [Jem |] 15- 1 1 1 1 1 1 1 1 min devit test (0/1) To oss ee [ose [as [ee [user [ose
Exemplary 81 82 83 84 85 86 87 a PP P, [for 2.0236 | 2.0321 | 2.0166 | 2.0244 | 2.0318 | 2.0162 | 2.0336 | 2.0329
WT Pier cm’/g | 0.2062 | 0.2064 | 0.2089 | 0.2091 | 0.2091 | 0.2124 | 0.2079 | 0.2083 [for (ng- dg
I Pg °C 667.2 684.9 657.5 673.9 689.4 662.6 692.5 689.9 [for Tl Pa [for | gem’ | 53.0455 | 5.072 49513 | 4.9728 | 5.0006 | 4.860 5.0354 | 5.0251 ar | TE Pres - 0.0084 | 0.0073 | 0.0090 | 0.0079 | 0.0069 | 0.0087 | 0.0069 | 0.0065 (0.269 -0.12 * Ty Pret - 0.0034 | 0.0023 | 0.0040 | 0.0029 | 0.0019 | 0.0037 | 0.0019 | 0.0015 (0.274 -0.12 *T) Pa - 0.0338 | 0.0401 | 0.0347 | 0.0407 | 0.0458 | 0.0418 | 0.0447 | 0.0448 (1.571 +
0.083 * Po) Table 6 Continued Exemplary 89 90 91 92 93 94 95 96 a PPP EP PN Yo
Exemplary 89 90 91 92 93 94 95 96 a POPP WO; | mol. 7.88 10.35 8.69 7.29 9.55 8.13 6.67 13.39 cE La:0; | mol. 21.84 20.86 21.49 22.02 21.09 21.63 22.20 20.89
EE TiO, | mol. 16.27 18.02 17.30 16.64 18.55 17.90 17.23 13.13
CE Nb,Os | mol. 13.33 12.12 12.85 13.47 12.30 12.93 13.58 12.93
STE S10; mol. 0.0566 | 0.0562 | 0.0564 | 0.0563 | 0.0561 | 0.0562 | 0.0363 | 0.0584 ll dl ZrO, | mol. 7.28 6.32 6.65 6.97 5.90 6.22 6.54 7.00
EE Ta,0s | mol. 0.0116 | 0.0115 | 0.01153 | 0.0115 | 0.0114 | 0.0115 | 0.0115 | 0.0119
CE TiO, mol. 29.60 30.14 30.15 30.11 30.86 30.83 30.81 26.06 + Yo Nb, Os RE:0; | mol. 66.60 67.66 66.97 66.40 67.40 66.81 66.21 67.34 + % ZrO, + TiO: + Nb,Os + WO; WO: | mol. 24.15 28.36 25.98 23.94 28.10 26.03 23.89 26.51 + Yo TiO, TiO, - | mol. 16.21 17.96 17.24 16.59 18.50 17.84 17.17 13.07 ef
Exemplary 89 90 91 92 93 94 95 96 a PPP PP + % SiO; - P,Os SiO; | mol. 0.0566 | 0.0362 | 0.0363 | 0.0563 | 0.0560 | 0.0561 | 0.0563 | 0.0583 + % 3 3 7 2 5 9 4 7 GeO, Ee TT [pw 15- 1 1 1 1 1 1 1 1 min devit test (0/1) 7 | [oss [oss [uses [oss [osm [cs [057 [as P, [for 2.0344 | 2.0324 | 2.0338 | 2.0349 | 2.0331 | 2.0343 | 2.0356 | 2.0313 [TE Per cm’/g | 0.2088 | 0.2086 | 0.2091 |0.2095 | 0.2096 | 0.210 0.2105 | 0.2032 [for (ng- dg
I Prg °C 695.0 687.4 692.5 696.8 689.7 694.1 698.6 678.0 [for
TJ Py [for | g/cm’ | 5.0154 | 5.0158 | 5.0061 | 4.9994 | 4.9933 | 4.986 4.9789 | 5.1491 ar | Pies - 0.0065 | 0.0062 | 0.0061 | 0.0061 | 0.0057 | 0.0057 | 0.0056 | 0.0078 (0.269 -0.12 *T) Pret - 0.0015 | 0.0012 | 0.0011 | 0.0011 | 6.900E | 6.700E | 6.400E | 0.0028 om] [ATE
Exemplary 89 90 91 92 93 94 95 96 a PPP PN -0.12 a P,- 0.0472 | 0.0451 | 0.0473 | 0.0490 | 0.0477 | 0.0495 | 0.0514 | 0.0329 (1.571 +
0.083 * Py) Table 6 Continued Exemplary 97 98 99 100 101 102 103 104
EC BO; [mol | 31.69 32.86 | 31.05 |3198 33.06 |3041 |3133 (32.14 CE Pe Pe Pe Jr WO; |mol. | 14.68 11.72 15.59 13.10 10.44 16.45 14.02 | 11.93
CE La;0O: | mol. | 19.96 21.21 19.30 | 20.30 21.43 18.66 19.64 | 20.51 i ll il TiO, |mol. | 15.44 14.08 | 17.06 16.17 14.83 18.63 17.75 16.90 oe Nb:0; | mol. 11.77 13.07 | 10.94 11.97 13.18 10.15 11.16 | 12.06 he A A SiO, | mol. | 0.0288 | 0.0579 | 0.0286 | 0.0286 | 0.0575 | 0.0283 | 0.0284 | 0.0284 Ee dl ZrO, | mol. | 485 6.98 333 4.97 6.99 1.88 3.49 4.94
CRI BaO |mol. | 1,54 0 2.62 1.45 0 3.65 2.50 1.46 ce me SrO mol. | 0.0334 | 0 0.0497 | 0.0332 | 0 0.0821 | 0.0493 | 0.033 cE TE Peren Na,O | mol. 0.0277 | 0 0 0.0274 | 0.0275
VEL PP TTT
Exemplary 97 98 99 100 101 102 103 104 El Ta,Os | mol. | 0.0118 | 0.0118 | 0.0117 | 0.0117 | 0.0117 | 0.0077 | 0.0116 | 0.0116
UE ALO; | moL | 0 0 0 0 0 0.0167 | 0 0
OEL PDP TiO, | mol. | 27.21 27.16 | 28.060 |28.13 28.01 |2879 |2891 [2895 + % Nb,Os RE-O | mol. | 66.70 67.07 | 66.21 66.50 66.88 | 63.77 | 66.05 | 66.32 37+ % Z10, + TiO: + Nb, Os + WO; WO: |mol. | 30.12 25.80 |32.64 | 29.26 25.27 |35.08 |3177 |2882 + % TiO, R,O+ [ mol. | 1.570 2.696 1.480 0 3.759 | 2.578 | 1.493 Ll ll TiO, - | mol. | 1541 14.02 | 17.03 16.14 14.77 | 18.60 17.72 | 16.87 wo [© B:0; [mol | 31.72 3292 | 31.08 |3201 33.11 | 3044 | 3136 |3217 + % Si0;- P;05 SiO, | mol. | 0.02883 | 0.0578 | 0.0285 | 0.02862 | 0.0574 | 0.0283 | 0.0283 | 0.02843 + % 7 6 7 1 6 GeO;
Exemplary 97 98 99 100 101 102 103 104 a PPP 15- 1 1 1 1 1 1 1 1 min devit test (0/1) TT] [oo vst [us [os Jase [oss Toss [oss Py 2.0271 | 2.0322 | 2.024 | 20283 | 2.0329 | 2.0211 | 2.0253 | 2.029 [for ng] Pret cm'/g | 0.2029 | 0.2049 | 0.2026 | 0.2044 | 0.2063 | 0.2024 | 0.2042 | 0.2057 [for (ng dg
I Pr °C 671.4 683.1 666.7 | 676.5 687.1 662.3 671.8 | 680.1 [for Ti] Py gem’ | 5.1269 | 5.108 [5.1103 | 5.0914 | 5.0762 | 5.0942 | 5.0761 | 5.062 dry] Pres - 0.0049 | 0.0074 | 0.0028 | 0.0047 | 0.0070 | 8400E | 0.0026 | 0.0043 (0.269 -04 -0.12 *T) Per -9.800E | 0.0024 | -0.002 | -3.500E | 0.0020 | -0.004 | -0.002 | -7.200E (0.274 -05 2 -04 2 4 -04 -0.12 *T) Pu - 0.0306 | 0.0372 | 0.0288 | 0.0347 | 0.0406 | 0.0273 | 0.0330 | 0.0379 (1.571 +
0.083
Exemplary 97 98 99 100 101 102 103 104 El co) Lr LL LL LL Table 6 Continued Exemplary 105 106 107 108 109 110 111 112 OPP Ie B:0; |mol. (33.24 |29.63 32.28 | 33.53 34.98 34.07 |33.47 | 3341
CE WO; | mol. |9.12 17.58 10.59 7.29 9.99 9.99 12.98 10.00
CE La;0; | mol. | 21.68 17.84 | 20.67 | 22.01 20.98 20.98 | 20.99 20.99 UT ee TiO, | mol. 15.60 | 20.65 17.94 16.66 | 9.99 13.02 10.29 15.19 Ee Nb:0; | mol. 13.30 | 9.13 12.07 13.46 16.99 14.87 15.20 13.35
ET SiO, | mol. | 0.0571 | 0.028 0.0282 | 0.0565 | 0.0592 | 0.0579 | 0.0596 | 0.057 ll ZrO; | mol. | 6.98 0 4.74 6.97 7.00 7.00 6.99 7.00
J BaO [mol |0 4.99 1.60 0 0 0 0 0 cer IE Err SrO mol. | 0 0.0974 | 0.0327 | 0 0 0 0 0 SEN rr Err Na,O | mol. 0.0271 | 0.0273 0 0 OEL Pep PPP Ta,Os | mol. | 0.0116 | 0.0076 | 0.0115 | 0.0115 | 0.0161 | 0.0118 | 0.0122 | 0.0116 UT Oe Je ALO; |mol. |0 0.0165 | 0 0 0 0 0 0 OEL Pr LL PDP
Exemplary 105 106 107 108 109 110 111 112
EEE + % wo | | | | | | REO; | mol. 66.69 65.20 66.02 66.40 64.95 65.86 66.45 66.52 + % ZITO: + TiO, + Nb;0; + WO; WO; |mol. | 24.73 38.23 28.54 23.95 19.98 23.01 23.27 25.19 + % TiO, R:0+ | mol. 0 5.114 1.660 0 0 0 0 Ll A TiO, - | mol. 15.53 20.62 17.92 16.61 9.932 12.96 10.23 15.13 wo B,O; | mol. | 33.30 29.66 32.31 33.58 35.04 34.13 33.53 33.47 + % SiO; - POs Si0, | mol. 0.0570 | 0.0279 | 0.0281 | 0.0565 | 0.0591 | 0.0578 | 0.0596 | 0.0569 + % 6 8 7 1 7 8 3 7 GeO, 15- 1 1 1 1 1 1 1 1 min devit test (0/1) ee es [een [us [oa [oe
Exemplary 105 106 107 108 109 110 111 112 a P,, [for 2.0338 | 2.0174 | 2.0293 | 2.0349 | 2.0381 | 2.0337 | 2.0372 | 2.0305 EH ll Pos cm’/g | 0.2077 | 0.202 0.2071 | 0.2096 | 0.2091 | 0.2083 | 0.2046 | 0.2077 [for (ng- der
I Prg °C 691.1 636.6 683.9 696.8 681.1 684.0 | 676.5 686.1 [for
TJ Pa[for | gom’ | 5.0441 | 5.0739 | 5.0231 | 4.9988 | 5.0602 | 5.0415 | 5.1619 | 5.0287 ar | PEE Py - 0.0067 | -0.0018 | 0.0036 | 0.0061 | 0.0102 | 0.0085 | 0.0096 | 0.0073 (0.269 -0.12 *T) Pres - 0.0017 | -0.0068 | -0.0014 | 0.0011 | 0.0052 | 0.0035 | 0.0046 | 0.0023 (0.274 -0.12 *T) P,- 0.0442 | 0.0252 | 0.0414 | 0.0490 | 0.0471 | 0.0442 | 0.0378 | 0.0421 (1.571 +
0.083 * Py) Table 6 Continued Exemplary 113 114 115 116 117 118 119 120 Es Yo
Exemplary 113 114 115 116 117 118 119 120 a WO; | mol. 12.73 15.17 9.99 12.69 14.73 17.29 14.96 17.11 ll La:0; | mol. 20.99 20.99 20.98 20.99 20.99 20.99 20.99 20.99 Eee TiO, | mol. 13.05 10.51 17.31 15.04 13.21 10.72 15.52 13.59
PR Nb,Os | mol. 13.41 13.89 11.87 12.02 12.23 12.62 10.49 10.71
ST S10; mol. 0.0584 | 0.03 0.0561 | 0.0576 | 0.0294 | 0.0301 | 0.0289 | 0.0295 J dl ZrO, | mol. 6.99 7.00 7.00 7.00 7.00 7.00 7.00 7.00 cE Ta,0s | mol. 0.0119 | 0.0122 | 0.0114 | 0.0117 | 0.012 0.0123 | 0.0079 | 0.008
SE TiO, mol. 26.46 24.40 29.18 27.07 25.45 23.34 26.01 24.30 + Yo Nb, Os RE:0; | mol. 67.16 67.56 67.15 67.74 68.17 68.61 68.96 69.39 + % ZrO, + TiO: + Nb,Os + WO; WO: | mol. 25.78 25.68 27.30 27.73 27.95 28.01 30.48 30.70 + Yo TiO, TiO, - | mol. 12.99 10.48 17.26 14.99 13.18 10.69 15.49 13.56 ef
Exemplary 113 114 115 116 117 118 119 120
EEE A + % SiO; - P,Os SiO; | mol. 0.0584 | 0.0299 | 0.0560 | 0.0575 | 0.0293 | 0.0301 | 0.0289 | 0.0295 + % 1 8 7 6 7 4 0 2 GeO, 15- 1 1 1 1 1 1 1 1 min devit test (0/1) T | Jaa pa [oss [eon [vas [own [oa [ten P, [for 2.0332 | 2.0366 | 2.0274 | 2.0302 | 2.0328 | 2.0358 | 2.0292 | 2.0316
PO Pier cem’/g | 0.2043 | 0.2013 | 0.2072 [0.2038 | 0.2013 | 0.1981 |0.2003 | 0.1977 [for (ng- 1)/dry
I Prs °C 679.6 673.2 688.1 681.6 676.5 669.8 678.3 672.9 [for
TJ Py [for | gem’ | 5.1361 | 5.2364 | 5.015 5.1224 | 5.2048 | 5.3074 | 5.1978 | 5.2837 Fl ll Per 0.0080 | 0.0090 | 0.0061 | 0.0069 | 0.0075 | 0.0083 | 0.0061 | 0.0067 (0.269 -0.12 *T) Pier 0.0030 | 0.0040 | 0.0011 | 0.0019 | 0.0025 | 0.0033 | 0.0011 | 0.0017 (0.274
Exemplary 113 114 115 116 117 118 119 120 Ee ee ber (1.571 +
0.083 * Po) Table 6 Continued TiO; + mol.% | 22.00 26.00 | 26.00 [2601 [26.00 [2599 | 2601 | 26.00 a |" RE RE:0;+ mol.% | 69.98 67.00 | 67.01 | 68.15 | 67.00 | 68.07 | 69.02 | 67.00 ZrO, + TiO, + Nb,Os + WO: B:0:;+SiO;, | mol.% | 30.02 33.00 | 3299 [31.85 |33.00 [3193 |30.98 |33.00 oT ER CC CO ca CE EG LO LC
Gwe | sw [sw | wm sm 15-min devit 1 1 1 won| |||] JE [wewjmes wwe] [ene Tow Toa [aa [wa [On oan oS oa P| So TE | UE |S S| SE Pret [for (ng | em’/g | 0.1941 | 0.2032 | 0.2042 | 0.2048 | 0.2049 | 0.2056 | 0.2061 | 0.2036 1 ll Pr - (0.269 - 0.0074 | 0.0077 | 0.0086 | 0.0080 | (0.0094 | 0.0089 | 0.0083 | 0.0101 eo Per - (0.274 - 0.0024 | 0.0027 | 0.0036 | 0.0030 | 0.0044 | 0.0039 | 0.0033 | 0.0051 ry || [EE P,-(1.571 + 0.0158 | 0.0322 | 0.0339 | 0.0381 | 0.0350 | 0.0391 | 0.0425 | 0.0362 een
Table 6 Continued
Exemplary 129 130 131 132 133 134 135 136 El en Jo Jv om Joo Joo
Exemplary 129 130 131 132 133 134 135 136 El 0 manly [0 [vf [ov [5 Tv TiO; + | mol% | 26.00 | 26.00 | 2599 | 25.73 26.98 26.99 26.99 28.97 wa | Oe REO; | mol% | 68.05 | 68.86 | 69.86 | 58.76 66.97 67.97 68.97 65.94 + ZrO; + TiO; + Nb;0; + WO; WO; + | mol% | 26.00 | 26.00 | 25.99 | 22.98 22.99 26.49 29.99 21.98 wo TC R,O+ |mol% | 0 0 0 0.03062 | 0 0 0 0
ES PD TiO, - | mol% | 5.301 | 8.578 | 12.99 | 11.21 9.959 13.47 15.97 11.93 Fl a B,O;+ | mol% | 31.95 | 31.14 | 30.14 | 36.43 33.01 32.01 31.01 34.04 SiO; - P,Os SiO; + | mol% | 7.695 | 4.423 | 0 5.773 0.02998 | 0.02932 | 0.02881 | 0.05838 Sl a Tew [ [ow [sw [sw [sor [awe 15-min 1 1 1 devit test (0/1) RC Lc ic ToT er eee [own [own [vam Tse P, [for 2.0386 | 2.0406 | 2.0428 | 2.0214 | 2.0474 | 2.0391 | 2.0326 | 2.0425 Fl i ee
Exemplary 129 130 131 132 133 134 135 136 a Pr [for | em’/g | 0.2063 | 0.2067 | 0.2072 | 0.2008 | 0.2092 | 0.2049 | 0.2023 | 0.2127 1)/de7] Pre [for | °C 684.7 | 6878 | 6915 | 662.4 673.1 680.3 680.7 679.7 Be ee JJ Palfor | gem’ | 5.1495 | 5.1372 | 5.1206 | 5.1731 | 5.1284 | 5.1575 | 5.1705 | 5.0065 Fl ld Pos - 0.0096 | 0.0092 | 0.0085 | -7.600E- | 0.0119 | 0.0083 | 0.0064 | 0.0110 (0.269 04 -0.12 * Ty Pret - 0.0046 | 0.0042 | 0.0035 | -0.0058 | 0.0069 | 0.0033 | 0.0014 | 0.0060 (0.274 -0.12 *T) P,- 0.0402 | 0.0432 | 0.0468 | 0.0210 | 0.0508 | 0.0400 | 0.0324 | 0.0560 (1.571 +
0.083 * Py) Table 6 Continued Exemplary 137 138 139 140 141 142 143 144 wT B:0; |mol |3348 [3297 [3498 [3398 [3397 |3299 |32.00 31.99 CE ee ee WO; |mol. (9.99 10.00 7.00 7.00 6.99 15.99 15.99 15.99
CE La,O; | mol. 19.98 19.98 19.99 19.98 19.98 20.00 19.99 19.99 os ee ee [ee
Exemplary 137 138 139 140 141 142 143 144
EEE A Se NN S10; mol. 0.0575 | 0.0566 | 0.0575 | 0.0562 | 0.055 0.0301 | 0.0304 | 0.0301 CS IE Pe Pe ZrO, | mol. 6.99 6.99 6.99 6.99 7.00 6.99 6.99 6.99
PEP PP DPP Ta,Os | mol. 0.0156 | 0.0115 | 0.0156 | 0.0153 | 0.015 0.0123 | 0.0166 | 0.0123
CUE TiO, mol. 29.48 29.99 30.97 31.98 31.99 23.99 24.99 24.99 + Yo Nb, Os RE,O; | mol. 66.45 66.96 64.95 65.95 65.96 66.97 67.96 67.97 + % ZrO, + TiO» + Nb;0; + WO; WO: | mol. 23.98 25.99 19.98 22.99 24.99 24.99 24.99 25.99 + Yo TiO, TiO, - | mol. 13.93 15.94 12.93 15.94 17.94 8.964 8.968 9.966 Pl ll ll B;O; | mol. 33.54 33.03 35.04 34.03 34.02 33.02 32.03 32.02 + Yo SiO; - POs S10; mol. 0.0574 | 0.0565 | 0.0574 | 0.0562 | 0.0550 | 0.0301 | 0.0304 | 0.0301
Exemplary 137 138 139 140 141 142 143 144 a a I cu ere NN TT [ose Tosi [uss [ast [uses [oes pas [oe P, [for 2.0384 | 2.0343 | 2.043 2.0398 | 2.0297 | 2.035 2.0469 | 2.0419 El dl Pier cm’/g | 0.212 0.2113 | 0.2171 | 0.2166 | 0.2148 | 0.2027 | 0.2048 | 0.2039 [for (ng- 1)/der
I Pre °C 681.5 683.3 685.7 688.7 690.0 665.9 667.1 667.7 [for Td Py [for | g/m’ | 4.9917 | 4.9768 | 4.9005 | 4.8843 | 4.8561 | 5.2082 | 5.2342 | 5.2206 Fl ll ll Prt - 0.0098 | 0.0086 | 0.0109 | 0.0094 | 0.0076 | 0.0107 | 0.0117 | 0.0108 (0.269 -0.12 *T) Per 0.0048 | 0.0036 | 0.0059 | 0.0044 | 0.0026 | 0.0057 | 0.0067 | 0.0058 (0.274 -0.12 * Ty) Py - 0.0531 | 0.0503 | 0.0652 | 0.0634 | 0.0556 | 0.0317 | 0.0415 | 0.0376 (1.371 +
0.083 * Py)
Table 6 Continued TT Tem ee P| [em som [ewe Pc | [oun [oui om PORE | own [owt [wos Pom | [owe [own Jaw
[00140] Table 7 below lists the glass compositions and properties for Comparative Glasses C1-C44.
Table 7. Compositions and Properties of Comparative Example Glasses
Comparative Cl C2 C3 C4 C5 C6 C7 C8 me DO Referenc [4] [10] [5] [8] [6] [9] [3] [2]
PPR RPR La:0; mol. | 9.71 1449 | 13.29 |20.08 | 20.11 25.60 10.68 12.13
SE TiO, mol. | 21.73 [397 [3.33 31.67 | 31.71 23.99 8.54 3.57 OE Ie B,0; mol. | 2437 | 11.38 | 23.36 13.05 12.95 19.81 26.67 | 31.18
EE Ba0 mol. 1047 |0 0 0 0 0 0 0 DOE rrr rE Nb,Os mol. | 4.32 7.15 7.85 4.85 4.85 4.50 0.71 6.91
EI WO; mol. | 4.45 7.79 1328 | 4.12 412 3.00 11.39 5.08 ll ZrO, mol. | 6.89 5.92 3.33 7.60 7.61 6.80 0.36 3.58 Ee ee Y20; mol. | 3.73 9.12 0.83 0.35 0.35 4.50 0
A SiO; mol. | 9.78 16.62 | 3.32 12.99 12.99 11.81 1.43 3.58 OE ee Ie GeO; mol. | 3.24 0 0 0 0 0 0 i PP MgO mol. 1.30 0 0 0
SEP ZnO mol. | 0 21.42 | 28.09 |238 2.38 0 35.95 30.40 co Ee Gd, 04 mol. | 0 2.14 0 2.90 291 0 4.27 0
EP PP TE Ta,Os mol. 3.33 3.58 VEP PPE rrr
CE
Comparative Cl C2 C3 C4 C5 C6 C7 C8 Fe 0 reo ew on (ny- cm’/g 0.1792 | 0.2026 | 0.2026 | 0.1960 | 0.1712 | 0.1829 ha TUL LTTE Tug °C 990.0 | 1280. | 1080.0 | 1260.0 | 1260.0 | 1225.0 | 1000.0 | 1060.0
CT FK T, °C 638.0 | 591.00 | 726.00 | 726.00 | 727.00 | 576.00 | 593.00 cE Log(ntg) 0.4000 wr LLL | P, [for 1915 | 1.990 [1972 |2.049 |2.050 |2.024 1.906 1.909
PO Py [for | cm'/g | 0.204 [0.183 | 0.1825 | 0.2116 | 0.2116 | 0.1986 | 0.1702 | 0.1845 1)/dr7] Prs[for | °C 663.1 | 657.0 | 585.0 7202 | 720.5 744.6 | 5694 | 580.8 (Fl Pq [for gem) | 4.435 | 5511 | 5.345 5.081 5.085 5.146 | 5.389 | 4.897 Fl ll Table 7 Continued Comparative C9 C10 C11 C12 C13 Cl4 C15 Cle | Referenc [1] [7] [5] [5] [5] [13] [18] [17] EA ERT" La:0; mol. | 23.43 22.47 14.44 12.92 14.44 15.30 | 2493 | 23.61 SE PE ee TiO, mol. | 4.49 13.40 | 3.49 3.24 3.49 15.81 | 11.82 | 23.17 DEI Ie Je [ee en %
Comparative C9 C10 C11 C12 C13 Cl4 C15 C16 [EE Nb, Os mol. | 4.65 4.37 6.73 4.85 5.23 12.79 | 142 7.25
RI WO; mol. | 3.61 3.14 13.93 18.47 13.93 0 0.44
EI ZrO, mol. 12.33 7.24 349 3.23 3.49 4.60 1104 |7.10
SE Y-0; mol. | 2.14 1.06 0.81 0 0 0 0.37 cE er mr rr SiO; mol. | 9.72 14.88 1.62 3.23 1.62 2.69 3.14 11.78 EP Ie GeO, mol. 0 4.64 i A ZnO mol. 1.02 5.66 27.58 |2731 27.59 0 0 0
EE Gd:O; mol. | 4.37 4.02 0 0 0 0.89 15.63 3.14 i ll Ta 0s mol. 3.86 3.23 3.86 5.28 0 0 Erp IP Yb:0; mol. | 2.93 0 0 0 0 0 cer rr rrr ALO; mol. | 0 0 0 0 0 0.79
NE SnO, mol. 0 0 0 0 0 0.68
SEP PPD Li,O mol. 0 0 0 0 0 1.50
EP PPP Sb:0; mol. | 0 0 0 0 0 0 0.011
SEL PP LPP | 9 & [aa a zn aa aa | | GG lL ic cl ca
Comparative C9 C10 C11 C12 C13 Cl4 C15 C16
OP Dee | 19 17 14 19 19 | 19 | AC cn ce AC I Ce Ec EE P, [for 1.962 1.963 1.971 1.959 1.953 1.966 | 2.015 | 2.025 | Pur [for | cm’/g | 0.1684 | 0.1833 | 0.1785 | 0.1748 | 0.1753 | 0.214 | 0.15374 | 0.203 1)/dg] Py, [for | °C 714.3 703.0 5859 | 5745 584.0 673.1 | 761.9 726.6 Cl ll Py [for gem’ | 5.547 | 5.232 5399 | 5451 5360 | 4376 | 6.127 |5.092 Fl ll ll Table 7 Continued Comparative C17 C18 C19 C20 C21 C22 C23 C24 == a Referenc [9] [8] [11] [12] [15] [16] [14] [15] errr ee tm La,O; mol. | 18.60 | 2235 22.52 | 20.35 [21.76 | 2249 | 21.67 | 16.65 TE eee TiO; mol. | 27.00 |27.07 |27.16 14.17 | 22.14 | 26.05 16.97 | 18.77 oT B:0; mol. | 22.21 15.58 15.57 |3948 | 16.45 21.37 | 2851 | 38.96
TE Nb;0; mol. | 6.00 552 5.52 1.83 6.02 5.36 7.19 5.10 Ree Ie WO, mol. | 0 0 0 16.04 | 0 0 3.44 0
DO ZrO, mol. | 6.31 9.09 9.02 5.25 8.75 7.27 7.13 7.41 CoE as Jv |v [ss [mm [es fo fei
Comparative C17 C18 C19 C20 C21 C22 C23 C24
EEE er LLL LL JL Si0, mol. | 11.19 11.58 11.57 12.61 12.07 | 8.92 595
NE ZnO mol. | 0 1.48 1.48 2.64 0 0 coer IEP PPP Gd:0: mol. | 4.80 4.88 4.92 0 4.65 2.38 2.99 Emer pn Ta, Os mol. | 0 2.26 2.24 0.73 0 0.007 | 0
DE LT Li,O mol. | 3.69 0 0 0 0 0 0 0 EP rrr rrr As20; mol. 0 0 0.17 0 0.0722 i PP Bi50: mol. 0 0 0 6.01 0
SEL DEDEN CeO mol. | 0 0 0 0 0 0 0.13 0 Err rrr CaO mol. 0 0 0 0.031 | 0 NS i [rw [20 [aur [to ae [aw [io a fen [aw [son [seo | [ssw [seo | fem (ng- cm’/g | 0.2040 | 0.1928 | 0.1928 0.1930 | 0.1994 0.2019 ve [TREE RTL BT [© [an | we] | TJ [won fre [rw || ew || Log(Mig) 0.4000 cr LLL P, [for 1.999 | 2.065 2.065 1.929 | 2.054 |2.008 |2.022 | 1919
PO E Pu [for | cecm'/g | 0.2097 | 0.2029 | 0.203 0.179 | 0.199 | 0.2046 | 0.196 | 0.1995 wn [TT RT ET
Comparative C17 C18 C19 C20 C21 C22 C23 C24 [EE veel |J | | | | [ Py [for | °C 702.2 | 740.0 740.0 | 668.1 | 7624 | 724.0 | 667.0 | 703.3 ue Pa [for glem’ | 4.822 | 5.285 5.285 5.010 | 5.363 4.961 5.285 | 4.524 a epe eee ll Table 7 Continued Comparative C25 C26 C27 C28 C29 C30 C31 C32 ma Referenc [19] [9] [9] [9] [20] [27] [25] [21]
PPP PDP La:0: mol. 19.33 22.50 22.70 22.33 12.25 | 27.23 | 24.55 15.51
EE EN TiO, mol. | 20.74 2499 | 23.99 24.03 8.34 0 HE rr B,0; mol. | 20.54 24.70 | 28.50 19.82 38.60 | 2732 | 33.75 40.00
EE Nb.Os mol. | 5.94 4.30 4.00 3.50 7.26 0 8.31 16.98 Eee WO; mol. [0 0.20 0.20 4.50 2.99 18.23 | 15.06 3.51 Ji EN ZrO, mol. | 7.06 7.00 6.00 6.61 5.40 13.61 | 6.18 9.01 oom Y,0; mol. 1.55 3.50 4.00 441 1.77 0 0.71 cE eee rr SiO, mol. 12.46 12.81 10.61 11.80 1.11 0 cee rr ZnO mol. | 3.57 0 2124 | 0 0 14.99 cE rr Et Gd, 0; mol. | 8.81 0 0 3.00 0 0 2.48 0
EPD PP Ga jas je je Jo (eaf [6
Comparative C25 C26 C27 C28 C29 C30 C31 C32
OPP
RPL ng 1.9886 | 1.980 1.960 2.000 1.899 | 1.981 | 1.953 1.948 cm TE & eers ew ae [sw | fo | (ng-1)/dry | cm’/g | 0.1938 | 0.2041 | 0.2000 | 0.1923 0.1604
ETE LE Tug °C 1125.0 | 1125.0 | 1225.0 | 1040. cor ee T, °C 703.00 | 717.00 | 708.00 | 729.00 | 605.0 679.00 cme Log(Mugy) 0.8000 | 0.7000 | 0.4000 er | Et LL P, [for 2.022 1.976 1.964 2.018 1.892 | 2.042 | 2.039 1.955 El Hl Par [for cm’/g | 0.1942 | 0.2043 | 0.2015 | 0.1959 | 0.193 | 0.148 | 0.1668 | 0.202 1)/dr7] P+, [for °C 727.2 729.1 728.0 735.8 612.5 | 6874 | 681.8 629.8 (Fl ll Py [for gem’ | 5.358 4.737 | 4.717 5.212 4.596 | 5976 | 5.726 4.809 or [CPE Table 7 Continued Comparative C33 C34 C35 C36 C37 C38 C39 C40 ms Referenc [23] [22] [24] [1] [5] [2] [26] [5] EA rR
Comparative C33 C34 C35 C36 C37 C38 C39 C40 oe CTT 1% LLL LLL TiO, mol. | 20.06 [1556 |2334 |0 2.80 3.64 7.95 8.79 co He ee B:0; mol. | 39.04 [30.61 | 30.35 39.80 | 23.73 31.67 | 3959 |22.71 oS ee BaO mol. | 0 0 1.62 0 0 0 0 DEPP rr Nb, Os mol. | 0 0 1.87 10.68 | 5.49 10.13 242 4.85
EP WO; mol. 11.67 | 3.83 1.61 2.60 12.09 | 2.04 3.78 12.91 oS ZrO, mol. | 6.05 4.32 6.05 15.61 6.07 3.63 10.14 | 3.23 CoE Y:0; mol. | 0 0 0 6.09 0 0 0.81 SEL PIP PP Je Si0; mol. | 0 0 4.13 4.46 292 3.64 431 3.24 DE Ie ZnO mol. 15.27 | 4.60 26.01 30.87 12.71 27.31
KE EO Gd:0; mol. | 0 0 0 0 0.36 0 5.19 0 errr rE Ta,Os mol. | 6.05 4.42 0 0.51 7.28 2.07 0 3.23 RP mr Li,O mol. 0 0 4.22
SEP PPP Sb:0; mol. 0 0 0.13 0 0 0 0
DEP DPP PPP HfO, mol. | 0 21.09 [0 0 0 0 0 Bl DDP ny 1.946 | 1.966 | 1.9468 | 1.815 1.958 1.920 1.860 1.970 Ee En owe] | eer [se [em [em [so
Comparative C33 C34 C35 C36 C37 C38 C39 C40 me (ng- cm'/g 0.2036 | 0.1831 | 0.1757 | 0.1908 | 0.2033 | 0.1806 ne [TU] ETL mT || [me [mee Jr TT [| Jew] [mw mo ow [ew P, [for 1.929 | 1.957 | 1919 1.920 1.974 1.919 1.841 1.963 | PT Po [for | cm’/g | 0.187 | 0.183 | 0.1986 | 0.1915 | 0.1767 | 0.1926 | 0.1829 | 0.1836 1)/drz] Prelfor | °C 659.4 | 683.1 | 651.8 | 6785 389.6 | 587.5 606.7 | 590.2 (Fl Pa [for glem’ | 4.650 [4.948 | 4.605 4.737 | 5336 |4827 [4589 |5.250 a oe epe
Table 7 Continued wes [Jo Jefe fe [wv Jo Jom Jo Ce [wr [is [i i
Pow oon Thm Tom in
[00141] The reference key for each of the Comparative Glasses listed in Table 7 is as follows: [1] US10287205B2; [2] US857504882; [3] US8609560B2; [4] US8835336B2 ; [5] US9255028B2; [6] US930293082; [7] US9394194B2; [8] US9643880B2; [9] WO2020045417A1;
[10] WO2020062009A1; [11] JP2020073453A; [12] JP52129716A; [13] JPH09278480; [14] U.S. Provisional Patent Application Serial No. 63/076,551; [15] US4584279A; [16] US8728963B2; [17] W02012099168A1; [18] WO2020034215A1; [19] US866185382; [20] CN101215082; [21] CN104583142B; [22] JPS534023; [23] US4268312A ; [24] US8404606B2; [25] US8476177B2; [26] US2015225282; [27] Imaoka M.,Yamazaki T., Refractive index and Abbes number of glass of lanthanum borate system, J.Ceram.Assoc.Jpn, 1962, vol. 70, No. 5, p. 115-123.
[00142] Glasses with high refractive indexes, such as ng=2.0 or like, are typically characterized with high liquidus temperatures, which may reduce the liquidus viscosity and, therefore, cause crystallization of melts when cooling. Also, glasses with high liquidus temperatures should be melted at higher temperatures to avoid crystallization, which may cause the loss of transmittance and/or require longer bleaching procedure. Therefore, the lower the liquidus temperature at a given value of the refractive index, the better the characteristics of the resulting glasses are, and the higher the glass formability may be expected from these glasses. Accordingly, high refractive index at lower liquidus temperature identifies the advantage of a given glass composition comparing to its analogs with higher liquidus temperatures and/or lower refractive indexes.
[00143] FIG. 7 is a plot showing the relationship between the liquidus temperature Ty, and the refractive index parameter P, for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses (filled circles) are the Examples 1, 40, 48, 50 to 53, 58, 60, 62, 66, 67, 69, 71, 72, 122, 123, 125, 127, 128 and 133 to 141 from Table 6. The
Comparative Glasses {open circles} are the Examples C1 to C10 from Table 7. The refractive index parameter P, was determined according to Formula (If). All of the Exemplary Glasses and Comparative Glasses shown in FIG. 7 have the features specified in Table 8. In Table 8, the specification "Not limited" refers to a limitation that was not considered when selecting the compositions. Table 8. Limitations for glass compositions shown in FIG.7 we ie wm aa ee as = [es i ae [maas [a Pass aes EN ee [Hert Ee ee
[00144] The above-enumerated Comparative Glasses were selected as having the highest refractive index parameter P, at comparable values of liquidus temperature Ti, among the known glasses that have the features specified in Table 8.
[00145] The line corresponding to the formula y = 1.437 + 0.0005 * x shown in FIG. 7 provides a distinction between the Comparative Glasses having the features specified in Table 8 and the Exemplary Glasses 1, 40, 48, 50 to 53, 58, 60, 62, 66, 67, 69, 71, 72, 122, 123, 125, 127, 128 and 133 to 141 according to the present disclosure, As can be seen in FIG. 7, the mentioned Exemplary Glasses (filled circles) and none of the Comparative Glasses (open circles) represented in FIG, 7 fall above the line y = 1.437 + 0.0005 * x, where y corresponds to the refractive index parameter P, and x corresponds to the liquidus temperature Ti. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 7 satisfy the following formula {(Vij(a):
Pn- {1.437 + 0.0005 * Tig} > 0.00 (VI){a)
[00146] As can also be seen in FIG. 7, some of Exemplary Glasses and none of the Comparative Glasses represented in FIG. 7 fall above the line y = 1.481 + 0.0005 * x, where y corresponds to the refractive index parameter P, and x corresponds to the liquidus temperature Tug. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 7 satisfy the following formula {Vi}{b): P,-{1.481 +0.0005 * Ty) > 0.00 (Vi)}{b)
[00147] The Exemplary Examples represented in FIG. 7 are, by prediction, superior in terms of the combination of Ti, and ng to the best known Comparative Glasses that have the features specified in Table 8.
[00148] FIG. 8 is a plot showing the relationship between the liquidus temperature Ty, and ng for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses {filled circles) are the Examples 1 and 40 from Table 6. The Comparative Glasses {open circles) are the Examples C1, C3 to C8 and C11 to C13 from Table 7. All of the Exemplary Glasses and Comparative Glasses shown in FIG. 8 have the features specified in Table 9. In Table 9, the specification "Not limited" refers to a limitation that was not considered when selecting the compositions.
Table 9. Limitations for glass compositions shown in FIG.8 TE [mpm [mpm Wo fee B wo [le [3 eRe TT ewe [ae JE Fes [mao 3 ien nae [ie Ee [ee
[00149] The above-enumerated Comparative Glasses were selected as having the highest measured values of ng at comparable values of the liquidus temperature Tig among the known glasses that have the mentioned features specified in Table 9.
[00150] The line corresponding to the formula y = 1.437 + 0.0005 * x shown in FIG. 8 provides a distinction between the Comparative Glasses having the features specified in Table 9 and the Exemplary Glasses 1 and 40 according to the present disclosure. As can be seen in FIG. 8, the mentioned Exemplary Glasses (filled circles) and none of the Comparative Glasses {open circles} represented in FIG. 8 fall above the line y = 1.437 + 0.0005 * x, where y corresponds to ng and x corresponds to Tia. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 8 satisfy the following formula (VHi)(a): ng - (1.437 + 0.0005 * Tig} > 0.00 (Vii)}{a)
[00151] As can also be seen in FIG. 8, some of Exemplary Glasses and none of the Comparative Glasses represented in FIG. 8 fall above the line y = 1.481 + 0.0005 * x, where y corresponds to n4 and x corresponds to Tig. In other words, the said Exemplary Glasses and none of the Comparative Glasses represented in FIG. 8 satisfy the following formula (Vii){b): ng - (1.481 + 0.0005 * Ti) > 0.00 (Vii)(b)
[00152] The Exemplary Examples represented in FIG. 8 are, according to measurement, superior in terms of combination of Ty, and ng to the best known Comparative Glasses that have the features specified in Table 9. Table 10. Attributes of Comparative Example Glasses Having the Features Specified in Tables 8 and 9 mo [mln ET TiO, + | mol.% | 26.06 11.12 11.17 | 36.55 [3655 |2850 |924 10.47 oe
+ Br + cL] BO; + | mol% | 34.08 | 28.00 |2656 (2590 |2591 |31.60 |2795 |34.60 S10, - POs Ww Te [TR [Ie [ee [en [wr [Te ng - -0.0211 | -0.225 | -0.009 | -0.007 | -0.007 | -0.0495 | -0.0329 | -0.0343 (1.437 +
0.0005 * Tg) ng - -0.0651 | -0.269 | -0.053 | -0.051 | -0.051 | -0.0935 | -0.0769 | -0.0983 (1.481 +
0.0003 * Tig) FTO TOS TUS SUN ee RR [TT | TO P, - -0.0168 | -0.0875 | -0.0043 | -0.0166 | -0.0166 | -0.0252 | -0.0303 | -0.0575 (1.437 +
0.0005 * Tig) Pa - -0.0608 | -0.1315 | -0.0483 | -0.0606 | -0.0606 | -0.0692 | -0.0743 | -0.1015 (1.481 +
0.0005 * Tig) Table 10 Continued ee Wo wmv Jo op Pas wwe [0 Jo Jo Jo wv Jv Jo Joe ory | Te [00 [ae | RIOR) |W a | | PT er [Tn oT TE RE EE | 0 | 001 | 067 ra | [| | 00 | RE | ET
[00153] in addition to high refractive index and low density, high transmittance in the blue range is also desired for many applications. Glasses with high values of refraction at a given transmittance have an advantage over glasses with a lower value of refraction at the same transmittance.
[00154] FIG. 9 is a plot showing the relationship between the transmittance index T; {a predictor of transmittance in the blue and given by Formula (IV}) and the refraction parameter Piet (a prediction of refraction and given by Formula (Il) for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses (filled circles) are the Examples 1 to 19, 21, 25 to 38, 41, 43, 48 to 61, 63 to 74, 76, 77, 80 to 105, 107 to 124, 126, 127, 130, 131 and 133 to 147 from Table 6. The Comparative Glasses (open circles) are the Examples C14 to C23 from Table 7. All of the Exemplary Glasses and Comparative Glasses shown in FIG. 9 have the features specified in Table 11. In Table 11, the specification "Not limited” refers to a limitation that was not considered when selecting the compositions.
Table 11. Limitations for glass compositions shown in FIG.9 Ww [wale w me apm wh apm es LL www www wm www mw
TTT Ee wm wo wpm DE Lic) LN EL wep Jr Be Kn CN Ee CE
TTT He CL Woe ma ee wm Tels Bee man|s a Fm me
[00155] The above-enumerated Comparative Glasses were selected as having the highest refraction parameter Ps at comparable values of transmittance index T; among the known glasses that have the features specified in Table 11.
[00156] The line corresponding to the formula y = 0.269 - 0.12 * x shown in FIG. 9 provides a visual distinction between the Comparative Glasses having the features specified in Table 11 and the Exemplary Glasses 1 to 19, 21, 25 to 38, 41, 43, 48 to 61, 63 to 74, 76, 77,80 to 105,107 to 124, 126, 127, 130, 131 and 133 to 147. As can be seen in FIG. 9, the mentioned Exemplary Glasses (filled circles} and none of the Comparative Glasses {open circles) represented in FIG. 9 fall above the line y = 0.269 - 0.12 * x, where y corresponds to the refraction parameter Pie and x corresponds to the transmittance index T. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 9 satisfy the following formula {Vi{a): Pret - (0.269 - 0.12 * 7) >0.00 (VHI){a)
[00157] As can also be seen in FIG. 9, some of Exemplary Glasses and none of the Comparative Glasses represented in FIG. 9 fall above the line y = 0.274 -0.12 * x, where y corresponds to the refraction parameter P‚.s and x corresponds to the transmittance index Ti. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 9 satisfy the following formula (VHi){b): Pres - (0.274 -0.12 * T) > 0.00 {Vllij(b)
[00158] The Exemplary Examples represented in FIG. 9 are, by prediction, superior in terms of the combination of T; and {n4-1}/dgr to the best known Comparative Glasses that have the features specified in Table 11.
[00159] FIG. 10 is a plot showing the relationship between the transmittance index T; and the refractive index to density ratio {"refraction") {ng-1)/dg; for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses {filled circles) are the Examples 1, 14, 21 and 25 from Table 6. The Comparative Glasses (open circles) are the Examples C15, C17 to C19, C22 and C24 to C28 from Table 7. All of the Exemplary Glasses and Comparative Glasses shown in FIG, 10 have the features specified in Table 12. In Table 12, the specification "Not limited" refers to a limitation that was not considered when selecting the compositions.
Table 12. Limitations for glass compositions shown in FIG.10 Www mw on [els ® ae we fwwp wm wwe wm Tee Tee we em wo wpm www ae
LO ee mE gm Fm mp ww eels Goe [mano weed mm
[00160] The above-enumerated Comparative Glasses were selected as having the highest measured values of the refractive index to density ratio {“refraction”) {n4-1}/dr7 at comparable values of the transmittance index T; among the known glasses that have the mentioned features specified in Table 12.
[00161] The line corresponding to the formula y = 0.269 - 0.12 * x shown in FIG. 10 provides a distinction between the Comparative Glasses having the features specified in Table 12 and the Exemplary Glasses 1, 14, 21 and 25. As can be seen in FIG. 10, the Exemplary Glasses {filled circles) and none of the Comparative Glasses (open circles) represented in FIG. 10 fall above the line y = 0.269 - 0.12 * x, where y corresponds to {ns-1)/dgy and x corresponds to T.. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 10 satisfy the following formula (iX}(a): {ng-1)/dsr - {0.269 - 0.12 * T) > 0.00 {IX){a)
[00162] As can also be seen in FIG. 10, some of Exemplary Glasses and none of the Comparative Glasses represented in FIG. 10 fall above the line y = 0.274 - 0.12 * x, where y corresponds to (ng-1)/dzr and x corresponds to T. In other words, the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 10 satisfy the following formula {IX}{b}: {ng-1)/drr - {0.274 -0.12 * T)) > 0.00 (IX)}{b) Table 13. Attributes of Comparative Example Glasses Having the Features Specified in Tables 11 and 12 a CC CN CC Wo [wine [oo JoJo fo Jo fo a CO CEL EEL C220 CO Bc CC CC CA CO CA RE;0; | mol% | 4948 | 64.95 65.15 | 6290 | 69.25 69.26 | 5990 | 70.77 + ZrO, + TiO,
Nb, Os + WO, WO; + | mol% | 15.82 11.82 23.62 27.00 27.08 27.17 30.26 22.14 wo | TiO; + | mol.% | 28.63 13.25 30.43 33.00 32.60 32.69 16.01 28.16 |E ll hl R,O+ | mol% | 0 0 1.47 3.70 1.50 1.50 0 0
LS TT ea] [oes [rem [Jes TiO, - | mol.% | 13.12 8.671 11.37 15.80 15.45 15.53 14.18 9.524 so [PT B:0;+ | mol.% | 39.80 35.05 32.68 33.40 26.99 27.00 39.37 29.06 SiO; - PO; (ng- cm’/g 0.1663 0.2041 | 0.1928 | 0.1928 0.1931 FH [Dee] Mo | [Um] [2000 [2081 [20481] [20239 | (ng- -0.0072 -0.0079 | -0.0127 | -0.0128 1)/dgy - (0.269 -012% T) (ng- -0.0122 -0.0129 | -0.0177 | -0.0178 der - (0.274 -0.12* Ty LC lc oe A eee Fw maw ros war {sv [en
Pres - -0.0037 | -0.0161 | -0.0018 | -0.0023 | -0.0027 | -0.0027 | -0.0027 | -0.0034 (0.269 -0.12* T) Per- -0.0087 | -0.0211 | -0.0068 | -0.0073 | -0.0077 | -0.0077 | -0.0077 | -0.0084 (0.274 -0.12* T)
[00163] The Exemplary Examples represented in FIG. 10 are, according to measurement, superior in terms of combination of T; and (n4-1}/dk7 to the best known Comparative Glasses that have the features specified in Table 12.
[00164] Table 13 Continued oe vp i i Ji Wo wmv [vv [oo [ov 6 [wn mse op vv M6 [wep pnp jo joo
Ee CC CN CN CN CH RE:0; + ZrO, + | mol.% | 63.98 | 56.58 | 55.03 63.48 | 62.30 | 6090 | 6837 TiO, + Nb,Os + WO; Tee Ca LE B;0: + SiO; - mol.% | 33.37 | 3736 |4490 (32.93 |3750 |3910 [31.63 bo TT Geta Jaw [op | Joma [ois [oo [om [ote Er Jie [tw [Tw fan (ng-1)/dg - -0.0088 -0.0033 | -0.0068 | -0.0044 | -0.0081 | -0.0083 (0.269 -0.12 * T) {ng-1)/dgr - -0.0138 -0.0083 | -0.0118 | -0.0094 | -0.0131 | -0.0133 (0.274 -0.12 * TH) Pu | ol i [abs [ais [us [aans [ois P| [oom ow rome [a | tone [ee fz Pier - (0.269 - -0.0037 | -0.0041 | -0.0057 | -0.0065 | -0.0043 | -0.0066 | -0.0048 EE ld Prr- (0.274 - -0.0087 | -0.0091 | -0.0107 | -0.0115 | -0.0093 | -0.0116 | -0.0098
EE
[00165] FIG. 11 is a plot showing the relationship between the density parameter Py (Formula lif) and the refractive index parameter P, (Formula Ii} for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses (filled circles) are the Examples 1 to 4, 18 to 21, 29, 30, 52, 53, 63 to 75, 77 to 105, 107 to 124, 126, 127, 130, 131 and 133 to 147 from Table 6. The Comparative Glasses (open circles) are the Examples C29 to C38 from Table 7. All of the Exemplary Glasses and Comparative Glasses shown in FIG. 11 have the features specified in Table 14. in Table 14, the specification "Not limited” refers to a limitation that was not considered when selecting the compositions.
Table 14. Limitations for glass compositions shown in FIG.11 ee wo [ems ® we [enw we aes w men m me apm Wo asp wm emp wm wpm map x Toe ans Soa mane aw Reems ETE [wee
[00166] The above-enumerated Comparative Glasses were selected as having the highest refractive index parameter P, at comparable values of density parameter Py among the known glasses that have the features specified in Table 14.
[00167] The line corresponding to the formula y = 1.571 + 0.083 * x shown in FIG. 11 provides a distinction between the Comparative Glasses having the features specified in Table 14 and the Exemplary Glasses 1 to 4, 18 to 21, 29, 30, 52, 53, 63 to 75, 77 to 105, 107 to 124, 126,
127,130, 131 and 133 to 147. As can be seen in FIG. 11, the Exemplary Glasses {filled circles) and none of the Comparative Glasses {open circles) represented in FIG. 11 fall above the liney = 1.571 + 0.083 * x, where y corresponds to the refractive index parameter P, and x corresponds to the density parameter Py. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 11 satisfy the following formula (X): P.-(1.571+0.083 * Py) > 0.00 (X)
[00168] This means that, under the conditions specified in Table 14 above, some of the Exemplary Glasses are, by prediction, superior in terms of the combination of dz7 and ny to the best known Comparative Glasses that have the features specified in Table 14.
[00169] FIG. 12 is a plot showing the relationship between dir and ng for some of the Exemplary Glasses and some of the Comparative Glasses. The Exemplary Glasses (filled circles) are the Examples 1 from Table 6. The Comparative Glasses (open circles) are the Examples C3, C11, C35 and C38 to C44 from Table 7. All of the Exemplary Glasses and Comparative Glasses shown in FIG. 12 have the features specified in Table 15. In Table 15, the specification "Not limited" refers to a limitation that was not considered when selecting the compositions.
Table 15. Limitations for glass compositions shown in FIG.12 ee mo pw we ap wm wm [enw TE [eels We aes wm mem wm wea mC Ee Towa ae B Tw [ele Ww meee EE [wee
[00170] The above-enumerated Comparative Glasses were selected as having the highest measured values of ny at comparable values of dz; among the known glasses that have the mentioned features specified in Table 15.
[00171} The line corresponding to the formula y = 1.571 + 0.083 * x shown in FIG. 12 provides a distinction between the Comparative Glasses having the features specified in Table 15 and the Exemplary Glasses. As can be seen in FIG, 12, the mentioned Exemplary Glasses (filled circles) and none of the Comparative Glasses (open circles) represented in FIG. 12 fall above the line y= 1.571 + 0.083 * x, where y corresponds to ng and x corresponds to dgr. In other words, some of the Exemplary Glasses and none of the Comparative Glasses represented in FIG. 12 satisfy the following formula (Xl): ng - {1.571 + 0.083 * dg) > 0.00 (XI)
[00172] This means that, under the conditions specified in Table 15 above, some of the Exemplary Glasses are, according to measurement, superior in terms of combination of diy and ng to the best known Comparative Glasses that have the features specified in Table 15.
Table 16. Attributes of Comparative Example Glasses Having the Features Specified in Tables 14 and 15 ae EEE en EEE [anje [0 [ooo oi |v _
+ ZrO,
+ TiO;
+
Nb,Os
+ WO;
TiO, + | mol% | 11.17 | 10.21 1559 | 0 8.32 17.00 | 20.08 15.56 me |
SiO; + | mol.% | 3.33 1.62 1.11 0 0 0 Ll
B,Os + | mol% | 26.56 | 2635 | 39.55 |2733 |33.65 (3984 |3893 |3006l
Si0; -
P,0s Esa oe noe oe oe Te wm | few ng - -0.0512 | -0.0578 -0.111
(1.571
+ 0.083
* der) Te LC [sn Ec RE aa EE P| [vos [Tom [Tn [suas 2% | | tow ee Kc cca Kc ca ca
P,- -0.0424 | -0.0478 | -0.0601 | -0.0247 | -0.0072 | -0.0150 | -0.0272 | -0.0251
(1.571
+0.083
* Po)
Table 16 Continued zo jasje be Jo Jo Jo |b _ RE,O; | mol% | 48.52 |50.95 | 40.06 |31.74 |3924 |4350 (2873 |29.63 + ZrO, + TiO, + Nb,Os + WO; TiO, + | mol.% | 25.20 10.74 | 8.29 13.76 10.37 | 13.63 11.47 | 11.50 mo SiO, + | mol% | 4.15 4.52 292 3.65 4.32 3.23 3.66 3.68 El ll B,O; + | mol% | 34.36 | 4388 | 2653 |3516 (43.75 |2583 (3528 [3543 SiO; - POs [ge 3 Tw [aan amo [sw aw Toon u | [Be] [a [ow a ow om Te [EY | [mR [man [or [oI mo [wa ny - -0.0102 -0.0654 | -0.0511 | -0.0621 | -0.0467 | -0.0629 | -0.0631 (1.571 + 0.083 * dr) [an [4705 [hws [aon [ass [Sa [aw [v5 Foy [Ton [Tom Tom [Tw [196 [a [a Pu [eT [a [ws [ws [mer [907 [a [ST Fo [os [0 0099 en os 0 975
(1.571 + 0.083 * Po) Table 16 Continued wo [mn 0 wo ae 0 no fom ow Ow | Joven aes ema ho ie ow we we aaa | as ar
[00173] FIG. 13 shows the total transmittance T of Exemplary Glass 1 according to the present disclosure at wavelengths of from 350 nm to about 500 nm. Before testing, the sample was bleached at 650 °C for 90 hours. Before bleaching, the glass was heated from the room temperature with the rate of about 4 °C/min. After bleaching, the glass was cooled to the room temperature with the rate from about 2 °C/min. The total transmittance T data shown in FIG. 13 was obtained from glass sample having a thickness of 10 mm. As can be seen in FIG. 13, the Exemplary Glass 1 provides a total transmittance T = 70% at the wavelength à = 439 nm.
[00174] The following non-limiting aspects are encompassed by the present disclosure. To the extent not already described, any one of the features of the first through the eighty-sixth aspect may be combined in part or in whole with features of any one or more of the other aspects of the present disclosure to form additional aspects, even if such a combination is not explicitly described,
[00175] According to a first aspect, the glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 3.0 mol.% and less than or equal to 35.0 mol.% WO;, greater than or equal to 0.3 mol.% and less than or equal to
50.0 mol.% Ti0,, greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.% Nb,0Os, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi,0,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% MoQs, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V,0s, greater than or equal to 0.0 at.% and less than or equal to 5.0 at.% F, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Cl, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, greater than or equal to 0.6 mol.% and less than or equal to 60.0 mol.% TiO, + Nb,0s and may optionally contain one or more components selected from Al,03, B203, BaO, CaO, Gd,0;, GeQ,, K,0, La; 03, Li,O, MgO, Na,0, P,0s, Si0;, SrO, Ta.0s, Y203, Yb203, ZnO and Zr0,, wherein the glass has liquidus temperature, Tig, that is greater than or equal to 850 °C and less than or equal to 1350 °C, and the glass satisfies the conditions: 1.92 <P, < 2.08 and P,, - (1.437 + 0.0005 * Tig) > 0.00, where P, is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (i):
P,=-0.0051086 * Al,03 -0,0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,03 -
0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO; - 0.0049544 * KO + 0.0045475 * La203 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na20 + 0.0071165 * Nb,Qs -
0.0075074 * P,05 + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta;0s - 0.0015272 * TeO, + 0.0020281 * TiO; + 0.0012709 * WO; + 0.0025878 * Y203 +
0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, where a symbol “*” means multiplication.
[00176] According to a second aspect, the glass of the first aspect, wherein the glass has a refractive index at 587.56 nm, ng, that is greater than or equal to 1.92 and less than or equal to
2.08 and wherein the glass satisfies the condition: ny - (1.437 + 0.0005 * Tig) > 0.00.
100177] According to a third aspect, the glass of any one of aspects 1-2, wherein the glass satisfies the condition: ny - (1.481 + 0.0005 * Ts} > 0.00, where ny is refractive index at 587.56 nm.
[00178] According to a fourth aspect, the glass of any one of aspects 1-3, wherein the glass satisfies the condition: P, - (1.481 + 0.0005 * Tig} > 0.00.
[00179] According to a fifth aspect, the glass of any one of aspects 1-4, wherein the composition of the components comprises greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% ZrO;, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% ZnO, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% P,0s, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% GeO,, greater than or equal to 17.0 mol.% TiO, + Nb;O; + ZrO, and wherein the composition of the components satisfies the condition: 0 < B,03 + SiO; - P;0Os [mol.%] < 40.
[00180] According to a sixth aspect, the glass of any one of aspects 1-5, wherein the composition of the components comprises greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% Nb,0s and greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% TiO.
[00181] According to a seventh aspect, the glass of any one of aspects 1-6, wherein the composition of the components comprises greater than or equal to 5.0 mol.% La,0,, greater than or equal to 5.0 mol.% Nb,0s and greater than or equal to 5.0 mol.% TiO,.
[00182] According to an eighth aspect, the glass of any one of aspects 1-7, wherein the composition of the components comprises greater than or equal to 6.0 mol.% WO;, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% P,Qs, greater than or equal to 95.0 mol.% RO: and greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% ALO; +
REO, where RE,Q, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides.
[00183] According to a ninth aspect, the glass of any one of aspects 1-8, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO, where R,0 is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides.
[00184] According to a tenth aspect, the glass of the ninth aspect, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R,0 + RO.
[00185] According to an eleventh aspect, the glass of any one of aspects 1-10, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO..
[00186] According to a twelfth aspect, the glass of any one of aspects 1-11, wherein the composition of the components comprises greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La;03, greater than or equal to 3.0 mol.% and less than or equal to 30.0 mol.% WO;, greater than or equal to 0.3 mol.% and less than or equal to 30.0 mol.% TiO,, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% Nb,Os, greater than or equal to 0.0 mol.% and less than or equal to 15.0 mol.% SiO;, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Bi;03, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y203, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ZrO,;, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li, 0, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol. % SrO, greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na,O and greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% K;0.
[00187] According to a thirteenth aspect, the glass of any one of aspects 1-12, wherein the composition of the components comprises greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B,0;, greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La20;3, greater than or equal to 6.0 mol.% and less than or equal to 22.0 mol.% TiO,, greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb20;, greater than or equal to
3.0 mol.% and less than or equal to 26.0 mol.% WO3, greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 12.5 mol.% Si0,, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi,O3, greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y,0;, greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li20, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na20 and greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol. % K;0.
[00188] According to a fourteenth aspect, the glass of any one of aspects 1-13, wherein the the composition of the components comprises greater than or equal to 23.0 mol.% and fess than or equal to 33.0 mol.% B;03, greater than or equal to 14.5 mol.% and less than or equal to
22.5 mol.% La,0;, greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol.% TiO, greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb,Os, greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WO:3, greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% Zr0,, greater than or equal to 0.0 mol.% and less than or equal to 11.5 mol.% SiO,, greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol. % Bi,03, greater than or equal to 0 mol.% and less than or equal to 5.75 mol.% Y,0,, greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li,0, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na;0 and greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% K;0.
[00189] According to a fifteenth aspect, the glass of any one of aspects 1-14, wherein the composition of the components is substantially free of ZnO.
[00190] According to a sixteenth aspect, the glass of any one of aspects 1-15, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% Y,0,, greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Ta20s, greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO;, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As;03 and greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb;03, and wherein the composition of the components is substantially free of fluorine and substantially free of V,0s.
[00191] According to a seventeenth aspect, the glass of any one of aspects 1-16, wherein the glass satisfies the condition: T;2 0.52, where T, is a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula (I):
Ti = ({La203 + Gd;03 + ZrO; + WO:3) / {La203 + Gd;03 + ZrO; + WO3 + TiO; + Nb,0Os) (1).
[00192] According to an eighteenth aspect, the glass of the seventeenth aspect, wherein T,2 0.57.
[00193] According to a nineteenth aspect, the glass of the eighteenth aspect, wherein
0.62 <T;s 0,95.
[00194] According to a twentieth aspect, the glass of any one of aspects 1-19, wherein the glass satisfies the conditions: 4.5 < Py < 5.5 and 1.95 <P, < 2.07, where P, is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (lf): P, =-0.0051086 * Al,O3 - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi;0; -
0.0014511 * CaO + 0.0047429 * Gd,05 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La;03 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb;0; -
0.0075074 * P,0s + 0.0015814 * PbO - 0.0043959 * SiO; - 0.00086373 * SrO + 0.0045915 * w Ta20s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +
0.0048156 * Yb203 - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, Pq is a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (if): Pa (g/cm) = 4.95 - 0.036300 * Al,03 - 0.028364 * B,03 + 0.010786 * BaO + 0.077280 * Bi,0; -0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,0; - 0.024973 * K,0 + 0.050388 * ta,0; - 0.015411 * Li,0 - 0.014318 * Na20 - 0.0016283 * Nb2O; + 0.078354 * Nd,0; -
0.045034 * P,O; + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - 0.015844 * TiO, (i + 0.020220 * WO; + 0.016362 * Y,0; + 0.058765 * Yb,0; + 0.0086588 * ZnO + 0.0043754 * ZrQ,, wherein a symbol “*” means multiplication.
[00195] According to a twenty-first aspect, the glass of any one of aspects 1-20, wherein the glass has a density at room temperature, dar, that is greater than or equal to 4.5 g/cm? and less than or equal to 5.5 g/cm? and a refractive index at 587.56 nm, ng, that is greater than or equal to 1.95 and less than or equal to 2.07.
[00196] According to a twenty-second aspect, the glass of any one of aspects 1-21, wherein the liquidus temperature, Ti, is less than or equal to 1100 °C.
[00197] According to a twenty-third aspect, the glass of the twenty-second aspect, wherein the liquidus temperature, Ti, is less than or equal to 1050 °C.
[00198] According to a twenty-fourth aspect, the glass of any one of aspects 1-23, wherein the glass has a decimal logarithm of liquidus viscosity, Log{niq, [P]), that is greater than or equal to 0.50.
[00199] According to a twenty-fifth aspect, the glass of the twenty-fourth aspect, wherein the decimal logarithm of liquidus viscosity, Log{n1a [P]}, is greater than or equal to 0.75.
[00200] According to a twenty-sixth aspect, a glass of any one of aspects 1-25, wherein when cooled in air from 1100 °C to 500 °C in 2.5 minutes, the glass does not crystallize.
[00201] According to a twenty-seventh aspect, a glass of any one of aspects 1-26, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C.
[00202] According to a twenty-eighth aspect, a method for manufacturing an optical element, the method comprising processing the glass of any one of aspects 1-27.
[00203] According to a twenty-ninth aspect, an optical element comprising the glass of any one of aspects 1-28.
[00204] According to a thirtieth aspect, the glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 7.5 mol.% and less than or equal to 28.0 mol.% TiO;, greater than or equal to 1.0 mol.% and less than or equal to
40.0 mol.% B;03, greater than or equal to 0.3 mol.% and less than or equal to 19.5 mol.% Nb,0s, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% WO:;, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% La20;, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Gd:03, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi203, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% TeO;, greater than or equal to 0.0 mol.% and less than or equal to 13.5 mol.% SiO,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Al,0,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, greater than or equal to 0.0 mol.% and less than or equal to 10,0 mol.% GeQ,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol. % Ta, 0s, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol. % PbO, greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V,0s, greater than or equal to 0.0 at.% and less than or equal to 5.0 at.% F, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Cl, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, greater than or equal to 10.0 mol.% RE,O; + ZrO, + TiO, + Nb,0s5 + WO, less than or equal to 40.0 mol.% WO; + Ti0,, less than or equal to 35.0 mol. % TiO, + Nb;0s, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO and may optionally contain P,Os, wherein the composition of the components satisfies the conditions: TiO; - SiO; [mol.%] = 7.5 and B20; + SiO; - P2Os [mol.%] > 0.00, and the glass satisfies the conditions:
1.9<P, £2. land Py - (0.269 - 0.12 * T;} > 0.00, where P, is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (11): P, =-0.0051086 * Al,O; - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,0; -
0.0014511 * CaO + 0.0047429 * Gd,0, - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La20: - 0.0023329 * Lj,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb20: -
0.0075074 * P,O, + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * i) Ta,0s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +
0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, Pres is a refraction parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula {IV}: Pres (cm’/g) = 0.000087034 * SiO, - 0.00012035 * B,03 - 0.0012566 * La,03 + 00011411 * TiO, - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb,0Os - 0.00023383 * MgO -
0.00086501 * BaO - 0.0004486 * WO; - 0.0014114 * Gd, 0; - 0.00023872 * Y,0; -
0.00031575 * Ta,0s + 0.00011894 * i,0 + 0.00027178 * Al,O3 - 0.000099802 * Na,0 - wv
0.00028391 * GeO; - 0.00030531 * SrO - 0.00072061 * Bi; 0; - 0.0010964 * Yb,0; +
0.00022839 * K,0 - 0.00086617 * PbO + 0.00027129 * TeO, + 0.198, where RE20; is a total sum of rare earth metal oxides in trivalent equivalent, R,0 is a total sum of monovalent metal oxides, RO is a total sum of divalent metal oxides, and an asterisk (*} means multiplication.
[00205] According to a thirty-first aspect, the glass of the thirty-first aspect, wherein the glass has a refractive index at 587.56 nm, ng, that is greater than or equal to 1.9 and less than or equal to 2.1 and wherein the glass satisfies the condition: {(ng-1)/dgr - {0.269 - 0.12 * T;} > 0.00, where dar (g/cm?) is a density at room temperature, T; is a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula (1): Ti = (La,03 + Gd;03 + ZrO; + WO3) / {La203 + Gd,03 + ZrO; + WO; + TiO; + Nb,Os) {1}.
[00206] According to a thirty-second aspect, the glass of any one of aspects 30-31, wherein the glass satisfies the condition: {(ng-1)/dgr - {0.274 - 0.12 * T} > 0.00, where ng is a refractive index at 587.56 nm, dar (g/cm?) is a density at room temperature, and Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula {1}:
Ti = (La203 + Gd20; + ZrO, + WO3) / {La203 + Gd203 + Zr0, + WO; + TiO; + Nb, Os) (1).
[00207] According to a thirty-third aspect, the glass of any one of aspects 30-32, wherein the glass satisfies the condition: Ps - (0.274 - 0.12 * T;} > 0.00, where T, is a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula (1): Ti={La203 + Gd203 + ZrO; + WO:3) / {La203 + Gd203 + ZrO; + WO; + TiO, + Nb Os) (1).
[00208] According to a thirty-fourth aspect, the glass of any one of aspects 30-33, wherein the composition of the components comprises greater than or equal to 7.5 mol.% and less than or equal to 19.0 mol.% TiO, and greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% Nb20s.
[00209] According to a thirty-fifth aspect, the glass of any one of aspects 30-34, wherein the composition of the components comprises greater than or equal to 5.0 mol.% La,0; and greater than or equal to 5.0 mol.% Nb;0..
[00210] According to a thirty-sixth aspect, the glass of any one of aspects 30-35, wherein the composition of the components comprises greater than or equal to 6.0 mol.% WO, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% P,Os, greater than or equal to 95.0 mol% RO, and greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% ALO; + REO. where REO, is a total sum of rare earth metal oxides, and RO, is a total sum of al! oxides.
[00211] According to a thirty-seventh aspect, the glass of any one of aspects 30-36, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO.
[00212] According to a thirty-eighth aspect, the glass of the thirty-seventh aspect, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R,0 + RO.
[00213] According to a thirty-ninth aspect, the glass of any one of aspects 30-38, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO,.
[00214] According to a fortieth aspect, the glass of any one of aspects 30-39, wherein the composition of the components comprises greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La;03, greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% WQ;, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Bi203, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y,0;, greater than or equal to 0.0 mol.%
and less than or equal to 10.0 mol.% ZrQ,, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li,0O, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na,0 and greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% K;O.
[00215] According to a forty-first aspect, the glass of any one of aspects 30-40, wherein the composition of the components comprises greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B,0s, greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La,0,, greater than or equal to 7.5 mol.% and less than or equal to 22.0 mol.% TiO,, greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb,Os, greater than or equal to
2.0 mol.% and less than or equal to 26.0 mol.% WO;, greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrQ,, greater than or equal to 0.0 mol.% and less than or equal to 12.5 mol.% Si0,, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi, 0s, greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y203, greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% LiO, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na,O and greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol.% K,0.
[00216] According to a forty-second aspect, the glass of any one of aspects 30-37, wherein the composition of the components comprises greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.% B;03, greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.% La:03, greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol.% TiO,, greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb;0;, greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WO:3, greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 11.5 mol.% Si0,, greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol.% Bi203, greater than or equal to 0 mol.% and less than or equal to 5.75 mol.% Y203, greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li,0, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na,O and greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% KO.
[00217] According to a forty-third aspect, the glass of any one of aspects 30-42, wherein the composition of the components is substantially free of ZnQ.
[00218] According to a forty-fourth aspect, the glass of any one of aspects 30-43, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% Y,0;, greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol. % Ta,0s, greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO,, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As,Q; and greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb;0;, and wherein the composition of the components is substantially free of fluorine and substantially free of V,0s.
[00219] According to a forty-fifth aspect, the glass of any one of aspects 30-44, wherein the glass satisfies the condition: T,> 0.52, where Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula (1): Ti = (La,0; + Gd;03 + ZrO: + WO3) / {La;03 + Gd:03 + ZrO, + WO; + TiO; + Nb, Os) (1).
[00220] According to a forty-sixth aspect, the glass of the forty-fifth aspect, wherein T;2
0.57.
[00221] According to a forty-seventh aspect, the glass of the forty-sixth aspect, wherein
0.62 <T, £0.95.
[00222] According to a forty-eighth aspect, the glass of any one of aspects 30-47, wherein the glass satisfies the conditions: 4.5 < Py < 5.5 and 1.95 < P, < 2.07, where Py is a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (iil): Py (g/cm?) = 4.95 - 0.036300 * Al,0, - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi,03 - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,0; - 0.024973 * K,0 +
0.050388 * La,0; - 0.015411 * Li,O - 0.014318 * Na,0 - 0.0016283 * Nb,0s + 0.078354 * Nd,0; - 0.045034 * P,O; + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - tn
0.015844 * TiO, + 0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yb,03 + 0.0086588 * ZnO + 0.0043754 * ZrO,
[00223] According to a fourth-ninth aspect, the glass of any one of aspects 30-48, wherein the glass has a density at room temperature, dr, that is greater than or equal to 4.5 g/cm? and less than or equal to 5.5 g/cm? and a refractive index at 587.56 nm, ng, that is greater than or equal to 1.95 and less than or equal to 2.07.
[00224] According to a fiftieth aspect, the glass of any one of aspects 30-49, wherein the glass has a liquidus temperature, Tig, that is less than or equal to 1100 °C.
[00225] According to a fifty-first aspect, the glass of the fifty-second aspect, wherein the liquidus temperature, Tig is less than or equal to 1050 °C.
[00226] According to a fifty-second aspect, the glass of any one of aspects 30-51, wherein the glass has a decimal logarithm of liquidus viscosity, Log{nyq [P]}, that is greater than or equal to
0.50.
[00227] According to a fifty-third aspect, the glass of the fifty-fourth aspect, wherein the decimal logarithm of liquidus viscosity, Log(ng [P]), is greater than or equal to 0.75.
[00228] According to a fifty-fourth aspect, a glass of any one of aspects 30-53, wherein when cooled in air from 1100 °C to 500 °C in 2.5 minutes, the glass does not crystallize.
[00229] According to a fifty-fifth aspect, a glass of any one of aspects 30-54, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C.
[00230] According to a fifty-sixth aspect, a method for manufacturing an optical element, the method comprising processing the glass of any one of aspects 30-55.
[00231] According to a fifty-seventh aspect, an optical element comprising the glass of any one of aspects 30-56.
[00232] According to a fifty-eighth aspect, the glass comprises a plurality of components, the glass having a composition of the components comprising greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.% WO:3, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% ZrO;, greater than or equal to 0.0 mol.% and less than or equal to 40.0 mol.% B;03, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% La, 0s, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% Bi,03, greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% ZnO, greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Ta,0s, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Al;03, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% V,0s, greater than or equal to 10.0 mol.% REO; + ZrO; + TiO, + Nb,Os + WOs, greater than or equal to 0.0 mol.% and less than or equal to
35.0 mol.% TiO, + Nb,Os, greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO; + GeO; and may optionally contain one or more components selected from P,0s, BaO, CaO, K20, Li,0, MgO, Na20, PbO and SrO, wherein the composition of the components satisfies the condition: B20:3 + SiO; - P,05 [mol.%] = 0.50, and the glass satisfies the conditions: 500 < Pr, < 700,
Pg< 6.0 and P, - {1.571 + 0.083 * Py) > 0.00, where P, is a refractive index parameter, calculated from the glass composition in terms of mol. % of the components according to the Formula (li): Pn =-0.0051086 * Al,03 - 0.0049247 * B;0; - 0.00034289 * BaO + 0.0086552 * Bi;0; -
0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO; - 0.0049544 * K,0 + 0.0045475 * La:03 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na20 + 0.0071165 * Nb,0s -
0.0075074 * P,O; + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta20s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +
0.0048156 * Yb203 - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, Py is a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (iH): Py (g/cm?) = 4.95 - 0.036300 * Al,0: - 0.028364 * B,0, + 0.010786 * BaO + 0.077280 * Bi,03 -0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,0; - 0.024973 * K,0 + 0.050388 * ta,0; - 0.015411 * Li,0 - 0.014318 * Na20 - 0.0016283 * Nb,Os + 0.078354 * Nd,0; -
0.045034 * P,O, + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - 0.015844 * TiO, i) + 0.020220 * WO; + 0.016362 * Y,0; + 0.058765 * Yb,0; + 0.0086588 * ZnO + 0.0043754 * Zr, Pig is a T; parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (V}): Pr (°C) = 595.358 - 0.63217 * B,0; - 0.46552 * SiO, + 1.1849 * TiO, + 0.59610 * Nb,Os -
1.6293 * WO; + 1.3877 * ZrO, + 4.4090 * La;03 + 4.1695 * Y,03 - 5.0756 * Bi,0; + 0.55630 * CaO - 5.3892 * PbO - 4.2774 * TeO, + 1.8497 * Al,03 - 0.40659 * GeO, - 1.7011 * ZnO - v)
4.1520 * Li,0 + 3.0777 * Gd, 04, where RE;03 is a total sum of rare earth metal oxides in trivalent equivalent, and an asterisk (*) means muitiplication.
[00233] According to a fifty-ninth aspect, the glass of the fifty-eighth aspect, wherein the glass has a glass transition temperature, Tg, that is greater than or equal to 500 °C and less than or equal to 700 °C and a density at room temperature, dr, that is less than or equal to 6.0 g/cm? and wherein the glass satisfies the following condition: ng - {1.571 + 0.083 * dgy) > 0.00, where ng is a refractive index at 587.56 nm.
[00234] According to a sixtieth aspect, the glass of any one of aspects 58-59, wherein the composition of the components comprises greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% Nb,0; and greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% TiO,.
[00235] According to a sixty-first aspect, the glass of any one of aspects 58-60, wherein the composition of the components comprises greater than or equal to 5.0 mol.% La,0,, greater than or equal to 5.0 mol.% Nb;0Os and greater than or equal to 5.0 mol.% TiO.
[00236] According to a sixty-second aspect, the glass of any one of aspects 58-61, wherein the composition of the components comprises greater than or equal to 6.0 mol.% WO, greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi203, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PO, greater than or equal to 95.0 mol.% R,,0, and greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% ALO; + REO, where REO, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides.
[00237] According to a sixty-third aspect, the glass of any one of aspects 58-62, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO, where R,0 is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides.
[00238] According to a sixty-fourth aspect, the glass of the sixty-third aspect, wherein the glass further comprises greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R;0 + RO, where R;0 is total sum of monovalent metal oxides, and RO is total sum of divalent metal oxides.
[00239] According to a sixty-fifth aspect, the glass of any one of aspects 58-64, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO..
[00240] According to a sixty-sixth aspect, the glass of any one of aspects 58-65, wherein the composition of the components comprises greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La;03, greater than or equal to 1.0 mol.% and less than or equal to 30.0 mol.% WO,, greater than or equal to 0.3 mol.% and less than or equal to 30.0 mol.% TiO,, greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% Nb;0;, greater than or equal to 0.3 mol. % and less than or equal to 10.0 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO;, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol. % Bi203, greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y,0;, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li, 0, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na;0 and greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% KO.
[00241] According to a sixty-seventh aspect, the glass of any one of aspects 58-66, wherein the composition of the components comprises greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B203, greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La,0;, greater than or equal to 6.0 mol.% and less than or equal to 22.0 mol.% TiO, greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb,0s, greater than or equal to 2.0 mol.% and less than or equal to 26.0 mol.% WQ;, greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO2, greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi, Qs, greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y;03, greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li,0, greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na,O and greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol.% K;0.
[00242] According to a sixtieth-eighth aspect, the glass of any one of aspects 58-67, wherein the composition of the components comprises greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.% B:03, greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.% La,0;, greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol.% TiO,, greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb,Os, greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WQ;, greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% ZrO,, greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% Si0,, greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol.% Bi,03, greater than or equal to 0 mol.% and less than or equal to 5.75 mol.% Y,0;, greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li0O, greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na20 and greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% K20.
[00243] According to a sixty-ninth aspect, the glass of any one of aspects 58-68, wherein the composition of the components is substantially free of ZnO.
[00244] According to a seventieth aspect, the glass of any one of aspects 58-69, wherein the composition of the components comprises greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Ta,0s, greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Te0,, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO, greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As,Q0s; and greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb:03, and wherein the composition of the components is substantially free of fluorine and substantially free of V;0s.
[00245] According to a seventy-first aspect, the glass of any one of aspects 58-70, wherein the glass satisfies the condition: T,> 0.52, where Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the Formula {1}: Ti = (La,0; + Gd;03 + ZrO: + WO3) / {La;03 + Gd:03 + ZrO, + WO; + TiO; + Nb, Os) (1).
[00246] According to a seventy-second aspect, the glass of the seventy-first aspect, wherein T; > 0.57.
[00247] According to a seventy-third aspect, the glass of the seventy-second aspect, wherein 0.62 < T; < 0.95.
[00248] According to a seventy-fourth aspect, the glass of any one of aspects 58-73, wherein the glass satisfies the conditions: 4.5 < P4 < 5.5 and 1.95 < P, < 2.07.
[00249] According to a seventy-fifth aspect, the glass of any one of aspects 58-74, wherein the glass has a density at room temperature, der, that is greater than or equal to 4.5 and less than or equal to 5.5 and a refractive index at 587.56 nm, ny, that is greater than or equal to
1.95 and less than or equal to 2.07.
[00250] According to a seventy-sixth aspect, the glass of any one of aspects 58-75, wherein the glass has a liquidus temperature, Tig, that is less than or equal to 1100 °C.
[00251] According to a seventy-seventh aspect, the glass of the seventy-sixth aspect, wherein the liquidus temperature, Ti, is less than or equal to 1050 °C.
[00252] According to a seventy-eighth aspect, the glass of any one of aspects 58-77, wherein the glass further has a decimal logarithm of liquidus viscosity, Log{nug [P]), that is greater than or equal to 0.50.
[00253] According to a seventy-ninth aspect, the glass of the seventy-eighth aspect, wherein the decimal logarithm of liquidus viscosity, Log(nq [P]), is greater than or equal to 0.75.
[00254] According to an eightieth aspect, a glass of any one of aspects 58-79, wherein when cooled in air from 1100 °C to 500 °C in 2.5 minutes, the glass does not crystallize.
[00255] According to an eighty-first aspect, a glass of any one of aspects 58-80, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C.
[00256] According to an eighty-second aspect, a method for manufacturing an optical element, the method comprising processing the glass of any one of aspects 58-81.
[00257] According to an eighty-third aspect, an optical element comprising the glass of any one of aspects 58-82.
[00258] According to an eighty-fourth aspect, a glass of any one of aspects 1-29, wherein the glass has a total transmittance measured on a sample of 10 mm thickness that is greater than or equal to 70% at a wavelength of 450 nm.
[00259] According to an eighty-fifth aspect, a glass of any one of aspects 30-57, wherein the glass has a total transmittance measured on a sample of 10 mm thickness that is greater than orequal to 70% at a wavelength of 450 nm.
[00260] According to an eighty-sixth aspect, a glass of any one of aspects 58-79, wherein the glass has a total transmittance measured on a sample of 10 mm thickness that is greater than or equal to 70% at a wavelength of 450 nm.
[00261] Many variations and modifications may be made to the above-described embodiments of the disclosure without departing substantially from the spirit and various principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and protected by the appended claims.
[00262] To the extent not already described, the different features of the various aspects of the present disclosure may be used in combination with each other as desired. That a particular feature is not explicitly illustrated or described with respect to each aspect of the present disclosure is not meant to be construed that it cannot be, but it is done for the sake of brevity and conciseness of the description. Thus, the various features of the different aspects may be mixed and matched as desired to form new aspects, whether or not the new aspects are expressly disclosed.
[00263] Further, the present disclosure also includes the following clauses, corresponding to the appended Dutch-language ‘Conclusies’: Clauses:
1. A glass comprising a plurality of components, the glass having a composition of the components comprising: e greater than or equal to 3.0 mol.% and less than or equal to 35.0 mol.% WO; e greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.% TiO,, e greater than or equal to 0.3 mol.% and less than or equal to 50.0 mol.% Nb,Os, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi,0;, se greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,,
e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% MoO;3, e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V,0:, e greater than or equal to 0.0 at.% and less than or equal to 5.0 at. % F, es greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Ci, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, e greater than or equal to 0.6 mol.% and less than or equal to 60.0 mol.% TiO, + Nb;0; and + optionally comprising one or more components selected from Al;03, B,O;, BaO, CaO, Gd:03, Ge0,, K;0, La203, Li20, MgO, Na20, P205, SiO2, SrO, Tay0s, Y203, Yb203, ZnO and Zr0:;, wherein the glass has e a liquidus temperature, Ti, that is greater than or equal to 850 °C and less than or equal to 1350 °C, and wherein the glass satisfies the conditions: e 1.92<P,< 2.08 and e P,- {1.437 +0.0005 * Tig) > 0.00, where e P,‚ is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (11): P‚ = -0.0051086 * Al,0; - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,0; -
0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO, - 0.0049544 * K,O + 0.0045475 * La,0; - 0.0023329 * Li,0 - 0.0026561 * MgO - 0,0035925 * Na;0 + 0.0071165 * Nb;Os -
0.0075074 * P,O; + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uo Ta;0s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,03 +
0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO; + 1.955, where a symbol “*” means multiplication.
2. The glass of clause 1, wherein the glass has e a refractive index at 587.56 nm, ng, that is greater than or equal to 1.92 and less than or equal to 2.08 and wherein the glass satisfies the condition: e ny-{1.437 + 0.0005 * Tig) > 0.00.
3. The glass of any one of clauses 1-2, wherein the glass satisfies the condition:
oe ng - {1.481 + 0.0005 * Ti) > 0.00, where e ng is refractive index at 587.56 nm.
4. The glass of any one of clauses 1-3, wherein the glass satisfies the condition: oe P,-{1.481 + 0.0005 * Tg) > 0.00.
5. The glass of any one of clauses 1-4, wherein the composition of the components comprises: e greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% ZrO;, e greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% ZnO, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% P,0s, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% GeQ,, es greater than or equal to 17.0 mol.% TiO, + Nb,Os + ZrO; and wherein the composition of the components satisfies the condition: e 0 <B,0; +50; -P;0; [mol.%]< 40,
6. The glass of any one of clauses 1-5, wherein the composition of the components comprises: e greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol,% Nb20s and e greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% TiO,.
7. The glass of any one of clauses 1-6, wherein the composition of the components comprises: e greater than or equal to 5.0 mol.% La:0;3, e greater than or equal to 5.0 mol.% Nb;0s and e greater than or equal to 5.0 mol.% TiO,.
8. The glass of any one of clauses 1-7 , wherein the composition of the components comprises: e greater than or equal to 6.0 mol.% WO:;, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% P,0;s, e greater than or equal to 95.0 mol.% RO, and es greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% Al;O3 + REmOn, where REO, is a total sum of rare earth metal oxides and RO, is a total sum of all oxides.
9. The glass of any one of clauses 1-8, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO, where RO is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides.
10. The glass of clause 9, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R,0 + RO.
11. The glass of any one of clauses 1-10, wherein the composition of the components comprises:
e greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO;.
12. The glass of any one of clauses 1-11, wherein the composition of the components comprises: e greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, e greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La, 0s, e greater than or equal to 3.0 mol.% and less than or equal to 30.0 mol.% WO:3, e greater than or equal to 0.3 mol.% and less than or equal to 30.0 mol.% TiO, s greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% Nb;Os, e greater than or equal to 0.0 mol.% and less than or equal to 15.0 mol.% SiO, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Bi,0s, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ZrO;, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, es greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaO, es greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na,0 and e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% KO.
13. The glass of any one of clauses 1-12 , wherein the composition of the components comprises: e greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B,0;, e greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La, 0s, e greater than or equal to 6.0 mol.% and less than or equal to 22.0 mol.% TiO,, se greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb, Os, e greater than or equal to 3.0 mol.% and less than or equal to 26.0 mol.% WO,, e greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrO», e greater than or equal to 0.0 mol.% and less than or equal to 12.5 mol.% SiO, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi,03, e greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, se greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na,0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol.% K,0.
14. The glass of any one of clauses 1-13, wherein the composition of the components comprises: e greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.% B,0;, e greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.% La; 0s, e greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol. % TiO,, e greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb,Os, e greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WO:3, es greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% ZrO,, es greater than or equal to 0.0 mol.% and less than or equal to 11.5 mol.% SiO;, e greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol.% Bi;03, e greater than or equal to O mol.% and less than or equal to 5.75 mol.% Y;03, e greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, es greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li,0, se greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na;0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% K;0.
15. The glass of any one of clauses 1-14, wherein the composition of the components is substantially free of ZnO.
16. The glass of any one of clauses 1-15 , wherein the composition of the components comprises: es greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% Y-03, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Ta,0s, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As,0; and es greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb20;3, and wherein the composition of the components is es substantially free of fluorine and es substantially free of V,0s.
17. The glass of any one of clauses 1-16, wherein the glass satisfies the condition: es T,>20.52, where e Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula: T;={La203 + Gd 03 + ZrO, + WO3) / (Lay 03 + Gd;03 + ZrO, + WO; + TiO; + Nb, Os).
18. The glass of clause 17, wherein s 120.57.
19. The glass of clause 18, wherein e 0.62<T;<0.95.
20. The glass of any one of clauses 1-19, wherein the glass satisfies the conditions: se 45<Py<5.5and e 195<P,<207, where e Pis a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (H): P, =-0.0051086 * ALO; - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,0; -
0.0014511 * CaO + 0.0047429 * Gd,0, - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La20: - 0.0023329 * Lj,0 - 0.0026561 * MgO - 0.0035925 * Na,O + 0.0071165 * Nb20: -
0.0075074 * P,05 + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta,05 - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WQ; + 0.0025878 * Y,0; +
0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e Pyis a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula {ll}: Pa (g/cm?) = 4.95 - 0.036300 * Al,03 - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi, 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,0; - 0.024973 * K,0 + 0.050388 * La20;3 - 0.015411 * 1i,0 - 0.014318 * Na,0 - 0.0016283 * Nb,Os + 0.078354 * Nd,0; -
0.045034 * P,O; + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i +0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yb,0; + 0.0086588 * ZnO + 0.0043754 * ZrO, wherein a symbol “*” means multiplication.
21. The glass of any one of clauses 1-20, wherein the glass has e a density at room temperature dez, that is greater than or equal to 4.5 g/cm’ and less than or equal to 5.5 g/cm? and e arefractive index at 587.56 nm, ny, that is greater than or equal to 1.95 and less than or equal to 2.07.
22, The glass of any one of clauses 1-21, wherein e the liquidus temperature Tig is less than or equal to 1100 °C.
23. The glass of clause 22, wherein e the liquidus temperature Ty, is less than or equal to 1050 °C. 24, The glass of any one of clauses 1-23, wherein the glass has e adecimal logarithm of liquidus viscosity, Log{n, [P]), that is greater than or equal to 0.50.
25. The glass of clause 24, wherein e the decimal logarithm of liquidus viscosity, Log{Tlig [P]), is greater than or equal to 0.75.
26. The glass of any one of clauses 1-25, wherein when cooled in air from 1100 °C to 500 °C in 2.5 minutes, the glass does not crystallize.
27. The glass of any one of clauses 1-26, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C.
28. A method for manufacturing an optical element, the method comprising processing the glass of any one of clauses 1-27.
29. An optical element comprising the glass of any one of clauses 1-27.
30. A glass comprising a plurality of components, the glass having a composition of the components comprising: e greater than or equal to 7.5 mol.% and less than or equal to 28.0 mol.% TiO,, e greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.% B,0,, e greater than or equal to 0.3 mol.% and less than or equal to 19.5 mol.% Nb,Os, es greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% WO;, e greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% La,0,, e greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Gd,0;, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi;0,, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% ZrO;, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% TeO,, se greater than or equal to 0.0 mol.% and less than or equal to 13.5 mol.% SiO,, es greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Al, Os, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol. % GeO, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Ta,0s, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V,0:,
e greater than or equal to 0.0 at.% and less than or equal to 5.0 at. % F, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Cl, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, es greater than or equal to 10.0 mol.% RE203 + ZrO; + TiO; + Nb; 05 + WO;, e Jess than or equal to 40.0 mol.% WO; + TiO,, e Jess than or equal to 35.0 mol.% TiO; + Nb,0s, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO and e optionally comprising P,0s, wherein the composition of the components satisfies the conditions: e TiO, - SiO; [mol.%] = 7.5 and e B,03+Si0; - P;0; [mol.%] > 0.00, and wherein the glass satisfies the conditions: e 19<P,<2.1and oe P.-{0.269-0.12 *T) > 0.00, where s P,is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (i): P,=-0.0051086 * Al,0; - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi;0; -
0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * ta,0; - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,O + 0.0071165 * Nb,0; -
0.0075074 * P,O, + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uw Ta20; - 0.0015272 * TeO, + 0.0020281 * TiO, + 0,0012709 * WO; + 0.0025878 * Y,03 +
0.0048156 * Yb203 - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e Per is a refraction parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (IV): Pret (cm’/g) = 0.000087034 * SiO; - 0.00012035 * B,0; - 0.0012566 * La,0; + 0.0011411 * TiO, - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb.Os - 0.00023383 * MgO -
0.00086501 * BaO - 0.0004486 * WO; - 0.0014114 * Gd,0; - 0.00023872 * Y,0; -
0.00031575 * Ta,0s + 0.00011894 * Li,O + 0.00027178 * Al, 0; - 0.000099802 * Na,0 - wv
0.00028391 * GeO; - 0.00030531 * SrO - 0.00072061 * Bi; 0; - 0.0010964 * Yb,0; +
0.00022839 * K,0 - 0.00086617 * PbO + 0.00027129 * TeO, + 0,198,
where RE20; is a total sum of rare earth metal oxides in trivalent equivalent, R,0 is a total sum of monovalent metal oxides, RO is a total sum of divalent metal oxides, and an asterisk (*} means multiplication.
31. The glass of clause 30, wherein the glass has e a refractive index at 587.56 nm, ng, that is greater than or equal to 1.9 and less than or equal to 2.1 and wherein the glass satisfies the condition: e (nr1)/da- (0.269 -0.12 *T) > 0.00, where e der (g/cm?) is a density at room temperature, e Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula: Ti = {La203 + Gd203 + ZrO; + WO3) / {La203 + Gd203 + ZrO; + WO; + TiO; + Nb20s).
32. The glass of any one of clauses 30-31, wherein the glass satisfies the condition: e (ng1)/dar- (0.274 -0.12 * T) > 0.00, where e nyis a refractive index at 587.56 nm, e der (g/cm?) is a density at room temperature, es and T;is a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula: Ti = {La203 + Gd203 + ZrO; + WO3) / {La203 + Gd203 + ZrO; + WO; + TiO; + Nb20s).
33. The glass of any one of clauses 30-32 wherein the glass satisfies the condition: e Pier- (0.274 -0,12 * T;} > 0.00, where e Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula T;= (La;0; + Gd;03 + ZrO, + WO3} / (La,0; + Gd;03 + ZrO; + WO; + TiO; + Nb,0s).
34. The glass of any one of clauses 30-33, wherein the composition of the components comprises: e greater than or equal to 7.5 mol.% and less than or equal to 19.0 mol.% TiO, and e greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% Nb,Os.
35. The glass of any one of clauses 30-34, wherein the composition of the components comprises:
e greater than or equal to 5.0 mol.% La20: and e greater than or equal to 5.0 mol.% Nb, 0s.
36. The glass of any one of clauses 30-35 , wherein the composition of the components comprises: e greater than or equal to 6.0 mol.% WO;, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% P, 0s, e greater than or equal to 95.0 mol.% RO, and es greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% Al,O; + REmOn. where REO, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides.
37. The glass of any one of clauses 30-36, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R,0 + RO. 38, The glass of clause 37, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R,0 + RO.
39. The glass of any one of clauses 30-38, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO;.
40. The glass of any one of clauses 30-36, wherein the composition of the components comprises: e greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, e greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La;03, e greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% WQ,, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Bi,0;, es greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ZrO, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaQ, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na20 and e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% K;0.
41. The glass of any one of clauses 30-36, wherein the composition of the components comprises:
e greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B,0;, e greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La;03, e greater than or equal to 7.5 mol.% and less than or equal to 22.0 mol.% TiO,, e greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb,Os, se greater than or equal to 2.0 mol.% and less than or equal to 26.0 mol.% WO,, e greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrO», e greater than or equal to 0.0 mol.% and less than or equal to 12.5 mol.% SiO,, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi,0s, e greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y,0;,, e greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, es greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li20, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrQ, e greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na,0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol.% K,0. 42, The glass of any one of clauses 30-37, wherein the composition of the components comprises: e greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.% B,0;, e greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.% La; 0s, e greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol. % TiO,, e greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb,Os, se greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WO,, es greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% ZrO,, e greater than or equal to 0.0 mol.% and less than or equal to 11.5 mol.% SiO,, e greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol.% Bi, 0s, e greater than or equal to 0 mol.% and less than or equal to 5.75 mol.% Y;03, e greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, es greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li,O, e greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na;0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% K,O. 43, The glass of any one of clauses 30-42, wherein the composition of the components is e substantially free of ZnO. 44, The glass of any one of clauses 30-43 , wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Ta,0s, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO;, es greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, se greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As;03 and e greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb,0;, and wherein the composition of the components is e substantially free of fluorine and e substantially free of V20s. 45, The glass of any one of clauses 30-44, wherein the glass satisfies the condition: e T;20.52. where e Tis a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula: T;= {La;03 + Gd,0; + ZrO, + WO3)} / (La203 + Gd;03 + ZrO, + WO; + TiO, + Nb, Os). 46, The glass of clause 45, wherein s T;20.57.
47. The glass of clause 46, wherein es 062<T;<0.95.
48. The glass of any one of clauses 30-47, wherein the glass satisfies the conditions: eo 45<Py<55 and e 195<P,<2.07, where e Pgis a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (Ii):
Pa (g/cm’) = 4.95 - 0.036300 * ALO; - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi, 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,05 - 0.024973 * K,0 + 0.050388 * L320; - 0.015411 * Li,0 - 0.014318 * Na,0 - 0.0016283 * Nb,Os + 0.078354 * Nd, 0; -
0.045034 * P,0s + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i) +0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yh,05 + 0.0086588 * ZnO + 0.0043754 * ZrO:, 49, The glass of any one of clauses 30-48, wherein the glass has e a density at room temperature, dar, that is greater than or equal to 4.5 g/cm? and less than or equal to 5.5 g/cm? and e arefractive index at 587.56 nm, ny, that is greater than or equal to 1.95 and less than or equal to 2.07.
50. The glass of any one of clauses 30-49, wherein the glass has e a liquidus temperature, Ti, that is less than or equal to 1100 °C. 51, The glass of clause 50, wherein e the liquidus temperature, Tig, is less than or equal to 1050 °C.
52. The glass of any one of clauses 30-51, wherein the glass has e a decimal logarithm of liquidus viscosity, Log{n, [P]), that is greater than or equal to 0.50.
53. The glass of clause 52, wherein e the decimal logarithm of liquidus viscosity, Log{n, [P]), is greater than or equal to 0.75. 54, The glass of any one of clauses 30-53, wherein when cooled in air from 1100 °C to 500 °C in
2.5 minutes, the glass does not crystallize,
55. The glass of any one of clauses 30-54, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C,
56. A method for manufacturing an optical element, the method comprising processing the glass of any one of clauses 30-55.
57. An optical element comprising the glass of any one of clauses 30-55.
58. A glass comprising a plurality of components, the glass having a composition of the components comprising: e greater than or equal to 1.0 mol.% and less than or equal to 40.0 mol.% WQs,, e greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% ZrO;, e greater than or equal to 0.0 mol.% and less than or equal to 40.0 mol.% B;03, e greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% La,0,, e greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% Bi203,
e greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol. % ZnO, e greater than or equal to 0.0 mol.% and less than or equal to 25.0 mol.% Ta,0s, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ALO, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, se greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% V,0s, e greater than or equal to 10.0 mol.% RE;03 + ZrO; + TiO; + Nb20; + WO,, e greater than or equal to 0.0 mol.% and less than or equal to 35.0 mol.% TiO, + Nb, 0s, e greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO, + GeO; and e optionally comprising one or more components selected from P,0s, BaO, CaO, K,0, Li,0, MgO, Na;0, PbO and SrO, wherein the composition of the components satisfies the condition: e B203+Si0; - P,05 [mol.%] > 0.50, and wherein the glass satisfies the conditions: e 500 °C< Pis 700 °C, e P4<6.0 g/cm? and e P,-{1.571+0.083 * Pu) > 0.00, where e P, is a refractive index parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (i): Pn. = -0.0051086 * Al;03 - 0.0049247 * B,0; - 0.00034289 * BaO + 0,0086552 * Bi;0: -
0.0014511 * CaO + 0.0047429 * Gd,05 - 0.0033126 * GeO; - 0.0049544 * K,0 + 0.0045475 * La203-0.0023329 * Li,0 -0.0026561 * MgO - 0.0035925 * Na;0 + 0.0071165 * Nb;0;-
0.0075074 * P,O, + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uw Ta205 - 0.0015272 * TeO, + 0.0020281 * TiO, + 0,0012709 * WO; + 0.0025878 * Y,03 +
0.0048156 * Yb203 - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, es P4is a density parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (il):
Pa (g/cm’) = 4.95 - 0.036300 * ALO; - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi, 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,05 - 0.024973 * K,0 + 0.050388 * La:03 - 0.015411 * Li,0 - 0.014318 * Na,0 - 0.0016283 * Nb;O; + 0.078354 * Nd,0; -
0.045034 * P,0s + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i) +0.020220 * WO; + 0.016362 * Y,05 + 0.058765 * Yb,05 + 0.0086588 * ZnO + 0.0043754 * ZrO, e Py is aT, parameter, calculated from the glass composition in terms of mol.% of the components according to the Formula (V): Pis (°C) = 595.358 - 0.63217 * B,03 - 0.46552 * SiO; + 1.1849 * TiO, + 0.59610 * Nb, 0s -
1.6293 * WO; + 1,3877 * ZrO, + 4.4090 * La,0; + 4.1695 * Y,0; - 5.0756 * Bi,0; + 0.55630 * CaO -5.3892 * PhO - 4.2774 * TeO, + 1.8497 * Al,03 - 0.40659 * GeO; - 1.7011 * ZnO - WV)
4.1520 * Li,O + 3.0777 * Gd,0;, where RE,QO3 is a total sum of rare earth metal oxides in trivalent equivalent, and an asterisk (*)} means multiplication.
59. The glass of clause 58, wherein the glass has e a glass transition temperature, T,, that is greater than or equal to 500 °C and less than or equal to 700 °C and e a density at room temperature, der, that is less than or equal to 6.0 g/cm? and wherein the glass satisfies the condition: es ng-{1.571+ 0.083 * diy) > 0.00, where es Nn, is a refractive index at 587.56 nm.
60. The glass of any one of clauses 58-59, wherein the composition of the components comprises: e greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% Nb;0: and es greater than or equal to 1.0 mol.% and less than or equal to 19.0 mol.% TiO,.
61. The glass of any one of clauses 58-60, wherein the composition of the components comprises: e greater than or equal to 5.0 mol.% La;03, es greater than or equal to 5.0 mol.% Nb;O; and e greater than or equal to 5.0 mol.% TIO.
62. The glass of any one of clauses 58-61, wherein the composition of the components comprises:
e greater than or equal to 6.0 mol.% WO, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi;0;, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% P,0s, e greater than or equal to 95.0 mol.% R,,0, and es greater than or equal to 0.0 mol.% and less than or equal to 30.0 mol.% Al,O; + REmOn, where REO, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides.
63. The glass of any one of clauses 58-62 , wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% R20 + RO, where R,0 is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides.
64. The glass of clause 63, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% R,0 + RO.
65. The glass of any one of clauses 58-64 , wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO,.
66. The glass of any one of clauses 58-62, wherein the composition of the components comprises: e greater than or equal to 10.0 mol.% and less than or equal to 40.0 mol.% B,0;, e greater than or equal to 10.0 mol.% and less than or equal to 25.0 mol.% La; 03, e greater than or equal to 1.0 mol.% and less than or equal to 30.0 mol. % WQ,, e greater than or equal to 0.3 mol.% and less than or equal to 30.0 mol. % TiO,, e greater than or equal to 0.3 mol.% and less than or equal to 20.0 mol.% Nb,Os, es greater than or equal to 0.3 mol.% and less than or equal to 10.0 mol.% ZrO,, e greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Bi,0s, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% BaO, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% SrQ, e greater than or equal to 0.0 mol.% and less than or equal to 3.0 mol.% Na;0 and e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% KO.
67. The glass of any one of clauses 58-62, wherein the composition of the components comprises: e greater than or equal to 21.5 mol.% and less than or equal to 34.5 mol.% B,0;, e greater than or equal to 13.0 mol.% and less than or equal to 24.0 mol.% La, 03, e greater than or equal to 6.0 mol.% and less than or equal to 22.0 mol.% TiO,, e greater than or equal to 4.5 mol.% and less than or equal to 18.0 mol.% Nb,Os, e greater than or equal to 2.0 mol.% and less than or equal to 26.0 mol.% WO; se greater than or equal to 0.5 mol.% and less than or equal to 8.0 mol.% ZrO,, es greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO, e greater than or equal to 0.0 mol.% and less than or equal to 7.5 mol.% Bi;03, e greater than or equal to 0.0 mol.% and less than or equal to 6.5 mol.% Y,0;, e greater than or equal to 0.0 mol.% and less than or equal to 5.5 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 4.6 mol.% BaO, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, e greater than or equal to 0.0 mol.% and less than or equal to 2.7 mol.% Na;0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.8 mol.% KO.
68. The glass of any one of clauses 58-63, wherein the composition of the components comprises: es greater than or equal to 23.0 mol.% and less than or equal to 33.0 mol.% B,0;, e greater than or equal to 14.5 mol.% and less than or equal to 22.5 mol.% La, 03, e greater than or equal to 8.0 mol.% and less than or equal to 20.0 mol.% TiO, e greater than or equal to 6.0 mol.% and less than or equal to 16.5 mol.% Nb,Os, e greater than or equal to 5.0 mol.% and less than or equal to 23.0 mol.% WO:3, e greater than or equal to 1.75 mol.% and less than or equal to 7.25 mol.% ZrO, se greater than or equal to 0.0 mol.% and less than or equal to 4.8 mol.% SiO,, e greater than or equal to 0.0 mol.% and less than or equal to 7.0 mol. % Bi;03, e greater than or equal to 0 mol.% and less than or equal to 5.75 mol.% Y,0;, e greater than or equal to 0 mol.% and less than or equal to 4.75 mol.% CaO, e greater than or equal to 0.0 mol.% and less than or equal to 4.0 mol.% BaO, e greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% Li;0, e greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, se greater than or equal to 0.0 mol.% and less than or equal to 2.4 mol.% Na,0 and e greater than or equal to 0.0 mol.% and less than or equal to 1.6 mol.% KO.
69. The glass of any one of clauses 58-68, wherein the composition of the components is e substantially free of ZnO.
70. The glass of any one of clauses 58-69, wherein the composition of the components comprises: e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% Ta,0s, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% As,0; and se greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol.% Sb,0;, and wherein the composition of the components is s substantially free of fluorine and e substantially free of V,0s.
71. The glass of any one of clauses 58-70, wherein the glass satisfies the condition: e Ti20.52. where e T;is a transmittance index, calculated from the glass composition in terms of mol.% of the components according to the formula: Ti = (La;03 + Gd, 03 + ZrO, + WO3) / (La203 + Gd;03 + ZrO, + WO; + TiO; + Nb;Os).
72. The glass of clause 71, wherein e T, 2057.
73. The glass of clause 72, wherein es 0.62<T<0.95.
74. The glass of any one of clauses 58-73, wherein the glass satisfies the conditions: s 45<Py<5,5and e 1.95<P,<2.07.
75. The glass of any one of clauses 58-74, wherein the glass has es a density at room temperature, dgy, that is greater than or equal to 4.5 and less than or equal to 5.5 and e arefractive index at 587.56 nm, ng, that is greater than or equal to 1.95 and less than or equal to 2.07.
76. The glass of any one of clauses 58-75, wherein the glass has e a liquidus temperature, Tia, that is less than or equal to 1100 °C.
77. The glass of clause 76, wherein e the liquidus temperature, Ti, is less than or equal to 1050 °C.
78. The glass of any one of clauses 58-77, wherein the glass has e a decimal logarithm of liquidus viscosity, Log(n ‚4 [P]), that is greater than or equal to 0.50.
79. The glass of clause 78, wherein e the decimal logarithm of liquidus viscosity, Log{nq [P]), is greater than or equal to 0.75.
80. The glass of any one of clauses 58-79, wherein when cooled in air from 1100 °C to 500 °C in
2.5 minutes, the glass does not crystallize.
81. The glass of any one of clauses 58-80, wherein when having a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C. 82, A method for manufacturing an optical element, the method comprising processing the glass of any one of clauses 58-81.
83. An optical element comprising the glass of any one of clauses 58-81. 84, The glass of any one of clauses 1-27, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm.
85. The glass of any one of clauses 30-55, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm.
86. The glass of any one of clauses 58-81, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm.

Claims (86)

Conclusies 1, Glas omvattende een veelvoud aan componenten, het glas omvattende een samenstelling van de componenten omvattende: e groter dan of gelijk aan 3.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% WO;, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 50.0 mol.% TiO,, e groter dan of gelijk aan 0.3 mol,% en kleiner dan of gelijk aan 50.0 mol.% Nb;0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% Bi203, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% TeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% PbO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.0 mol.% MoO;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.0 mol.% V,0s, e groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 5,0 at.% F, e groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 1.0 at.% Ci, e groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 1.0 at.% Br, e groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 1.0 at. % |, e groter dan of gelijk aan 0.6 mol.% en kleiner dan of gelijk aan 60.0 mol,% TiO; + Nb,Os en e optioneel omvattende één of meer componenten geselecteerd uit Al;03, B,03, BaO, CaO, Gd;0;, GeO;, K;0, La;03, Li;0, MgO, Na,0, P,0s, Si0,, SrO, Ta,0s, Y;0;, Yb203, ZnO en ZrO,, waarbij het glas omvat e een liquidustemperatuur, Tia, welke groter dan of gelijk aan 850 °C is en kleiner dan of gelijk aan 1350 °C, en waarbij het glas voldoet aan de voorwaarden: e 1,92<P,<2.08en eo P,-{1.437 +0.0005 * Tia) > 0.00, waarbij e Pis een brekingsindexparameter, die is berekend uit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (1):Claims 1, Glass comprising a plurality of components, the glass comprising a composition of the components comprising: e greater than or equal to 3.0 mol% and less than or equal to 35.0 mol% WO;, e greater than or equal to 0.3 mol% and less than or equal to 50.0 mol% TiO 2 , e greater than or equal to 0.3 mol% and less than or equal to 50.0 mol% Nb;0, e greater than or equal to 0.0 mol. % and less than or equal to 20.0 mol.% Bi203, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol% PbO, + greater than or equal to 0.0 mol% and less than or equal to 3.0 mol% MoO;, e greater than or equal to 0.0 mol% and less than or equal to 1.0 mol. % V,0s, e greater than or equal to 0.0 at.% and less than or equal to 5.0 at.% F, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Ci , e greater than or equal to 0.0 at.% and less than or g equal to 1.0 at.% Br, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at. %|, e greater than or equal to 0.6 mol% and less than or equal to 60.0 mol% TiO; + Nb,Os and e optionally comprising one or more components selected from Al;O3, B.O3, BaO, CaO, Gd;O;, GeO;, K;O, La;O3, Li;O, MgO, Na, 0, P10s, SiO1, SrO, Ta,0s, Y;0;, Yb2 O3 , ZnO and ZrO, wherein the glass comprises a liquidus temperature, Tia, which is greater than or equal to 850°C and less than or equal to 1350 °C, and where the glass satisfies the conditions: e 1.92<P,<2.08and eo P,-{1.437 +0.0005 * Tia) > 0.00, where e Pis is a refractive index parameter calculated from the glass composition in terms of mole % of the components of the Formula (1): P,=-0.0051086 * Al,O3 -0,0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,03 -P 1 = -0.0051086 * Al.O 3 -0.0049247 * B.0; - 0.00034289 * BaO + 0.0086552 * Bi.03 - 0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO; - 0.0049544 * KO + 0.0045475 * La203 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na20 + 0.0071165 * Nb,Qs -0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO; - 0.0049544 * KO + 0.0045475 * La203 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na20 + 0.0071165 * Nb,Qs - 0.0075074 * P,05 + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta;0s - 0.0015272 * TeO, + 0.0020281 * TiO; + 0.0012709 * WO; + 0.0025878 * Y203 +0.0075074 * P.05 + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta;0s - 0.0015272 * TeO, + 0.0020281 * TiO; +0.0012709 *WED; +0.0025878 * Y203 + 0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, waarbij een symbool “*” vermenigvuldiging betekent.0.0048156 * Yh,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, where a symbol “*” means multiplication. 2. Glas volgens conclusie 1, waarbij het glas omvat e een brekingsindex bij 587.56 nm, ng, welke groter dan of gelijk aan 1.92 is en kleiner dan of gelijk aan 2.08 en waarbij het glas voldoet aan de voorwaarde: e ng -(1.437 +0.0005 * Ty,) > 0.00.The glass of claim 1, wherein the glass comprises e a refractive index at 587.56 nm, ng, which is greater than or equal to 1.92 and less than or equal to 2.08 and wherein the glass satisfies the condition: e ng -(1.437 + 0.0005 * Ty,) > 0.00. 3. Glas volgens een der conclusies 1-2, waarbij het glas voldoet aan de voorwaarde: e ng- (1.481 + 0.0005 * Tig) > 0.00, waarbij e ng brekingsindex bij 587.56 nm is.Glass according to any one of claims 1-2, wherein the glass satisfies the condition: e ng - (1,481 + 0.0005 * Tig) > 0.00, where e ng is refractive index at 587.56 nm. 4. Glas volgens een der conclusies 1-3, waarbij het glas voldoet aan de voorwaarde: es P,-(1.481+0.0005 * Ty) > 0.00.Glass according to one of Claims 1 to 3, wherein the glass satisfies the condition: es P 1 -(1.481+0.0005 * Ty) > 0.00. 5. Glas volgens een der conclusies 1-4, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 20.0 mol.% ZrO,, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% ZnO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% P,0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% GeO;, e groter dan of gelijk aan 17.0 mol.% TiO, + Nb;Os + ZrO, en waarbij de samenstelling van de componenten voldoet aan de voorwaarde: e 0<B,0; + Si0, - P,O; [mol.%] < 40.Glass according to any one of claims 1-4, wherein the composition of the components comprises: e greater than or equal to 0.3 mol% and less than or equal to 20.0 mol% ZrO 2 , + greater than or equal to 0.0 mol .% and less than or equal to 25.0 mol% ZnO, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% P,0s, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% GeO;, e greater than or equal to 17.0 mol% TiO, + Nb;Os + ZrO, and wherein the composition of the components satisfies the condition: e 0<B,0; + SiO, - P,O; [mol%] < 40. 6. Glas volgens een der conclusies 1-5, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 19.0 mol.% Nb,0; en e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 19.0 mol.% TiO,.Glass according to any one of claims 1-5, wherein the composition of the components comprises: e greater than or equal to 1.0 mol% and less than or equal to 19.0 mol% Nb,0; and e greater than or equal to 1.0 mol% and less than or equal to 19.0 mol% TiO 3 . 7. Glas volgens een der conclusies 1-6, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 5.0 mol.% La;03, e groter dan of gelijk aan 5.0 mol.% Nb,Os en e groter dan of gelijk aan 5.0 mol.% TiO:;.Glass according to any one of claims 1-6, wherein the composition of the components comprises: e greater than or equal to 5.0 mol% La;O 3 , e greater than or equal to 5.0 mol% Nb,Os and e greater than or equal to 5.0 mol% TiO:; 8. Glas volgens een der conclusies 1-7, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 6.0 mol.% WO3, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% P,0s, e groter dan of gelijk aan 95.0 mol.% RO; en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% ALO; + REmOn, waarbij RE,,O, een totale som van zeldzame aardmetaaloxiden is, en RO, een totale som van alle oxiden.Glass according to any one of claims 1-7, wherein the composition of the components comprises: e greater than or equal to 6.0 mol% WO 3 , e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol. % P0.0s, e greater than or equal to 95.0 mole % RO; and e greater than or equal to 0.0 mol% and less than or equal to 30.0 mol% ALO; + REmOn, where RE, O, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides. 9. Glas volgens een der conclusies 1-8, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% R;0 + RO, waarbij R;0 een totale som van monovalente metaaloxiden is, en RO een totale som van divalente metaaloxiden.Glass according to any one of claims 1-8, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% R;0 + RO, wherein R;0 is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides. 10. Glas volgens conclusie 9, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.0 mol.% R,0 + RO.The glass of claim 9, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 1.0 mol% R10 + RO. 11. Glas volgens een der conclusies 1-10, waarbij de samenstelling van de componenten omvat:Glass according to any one of claims 1-10, wherein the composition of the components comprises: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.5 mol.% SiO..e greater than or equal to 0.0 mol.% and less than or equal to 4.5 mol.% SiO.. 12. Glas volgens een der conclusies 1-11, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% B,0;, e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% La,0;, e groter dan of gelijk aan 3.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% WO:3, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 30.0 mol,% TiO,, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 20.0 mol.% Nb;0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 15.0 mol.% Si0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Bi203, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Y,0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% ZrO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% BaO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% Li,0, e groter dan of gelijk aan 0.0 mo!.% en kleiner dan of gelijk aan 4.0 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3,0 mol.% Na,O en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% K;0.Glass according to any one of claims 1-11, wherein the composition of the components comprises: e greater than or equal to 10.0 mol% and less than or equal to 40.0 mol% B0.0; e greater than or equal to 10.0 mol% and less than or equal to 25.0 mol% La,0;, e greater than or equal to 3.0 mol% and less than or equal to 30.0 mol% WO:3, e greater than or equal to 0.3 mol% and less than or equal to 30.0 mol% TiO2, e greater than or equal to 0.3 mol% and less than or equal to 20.0 mol% Nb;0;, e greater than or equal to 0.0 mol. % and less than or equal to 15.0 mol% Si0, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Bi203, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Y,0s, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 7.5 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol. % BaO, + greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% Li,0, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 3.0 mol% Na,O and e greater than or equal to 0.0 mol% and less than or equal to 2.0 mol% K;0. 13. Glas volgens een der conclusies 1-12, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 21.5 mol.% en kleiner dan of gelijk aan 34.5 mol.% B,0;, e groter dan of gelijk aan 13.0 mol.% en kleiner dan of gelijk aan 24.0 mol.% La20;, e groter dan of gelijk aan 6.0 mol.% en kleiner dan of gelijk aan 22.0 mol.% TiO,, e groter dan of gelijk aan 4.5 mol.% en kleiner dan of gelijk aan 18.0 mol.% Nb,0s, e groter dan of gelijk aan 3.0 mol.% en kleiner dan of gelijk aan 26.0 mol,% WO;3, + groter dan of gelijk aan 0.5 mol.% en kleiner dan of gelijk aan 8.0 mol.% ZrO:, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 12.5 mol.% Si0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol.% Bi,03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 6.5 mol.% Y,0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.5 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.6 mol.% BaO,Glass according to any one of claims 1-12, wherein the composition of the components comprises: e greater than or equal to 21.5 mol% and less than or equal to 34.5 mol% B0.0; e greater than or equal to 13.0 mol% and less than or equal to 24.0 mol% La20;, e greater than or equal to 6.0 mol% and less than or equal to 22.0 mol% TiO2, e greater than or equal to 4.5 mol% and less than or equal to 18.0 mol% Nb,0s, e greater than or equal to 3.0 mol% and less than or equal to 26.0 mol% WO;3, + greater than or equal to 0.5 mol% and less than or equal to 8.0 mol% ZrO:, e greater than or equal to 0.0 mol% and less than or equal to 12.5 mol% SiO, e greater than or equal to 0.0 mol% and less than or equal to 7.5 mol% Bi,03, e greater than or equal to 0.0 mol% and less than or equal to 6.5 mol% Y,0;, e greater than or equal to 0.0 mol% and less than or equal to 5.5 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 4.6 mol% B aO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% Li,0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% SrO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.7 mol.% Na;0 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.8 mol.% KO.e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% Li,0, e greater than or equal to 0.0 mol.% and less than or equal to 3.6 mol.% SrO, + greater than or equal to 0.0 mol% and less than or equal to 2.7 mol% Na;0 and e greater than or equal to 0.0 mol% and less than or equal to 1.8 mol% KO. 14, Glas volgens een der conclusies 1-13, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 23.0 mol.% en kleiner dan of gelijk aan 33,0 mol.% B203, e groter dan of gelijk aan 14.5 mol.% en kleiner dan of gelijk aan 22.5 mol.% La203, e groter dan of gelijk aan 8.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% TiO,, e groter dan of gelijk aan 6.0 mol.% en kleiner dan of gelijk aan 16.5 mol.% Nb;0;, e groter dan of gelijk aan 5.0 mol.% en kleiner dan of gelijk aan 23.0 mol.% WO;, e groter dan of gelijk aan 1.75 mol.% en kleiner dan of gelijk aan 7.25 mol.% ZrO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 11.5 mol.% SiO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.0 mol.% Bi,0;, + groter dan of gelijk aan 0 mol.% en kleiner dan of gelijk aan 5.75 mol.% Y,0;, e groter dan of gelijk aan 0 mol.% en kleiner dan of gelijk aan 4.75 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% Li;0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.4 mol.% Na,0 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.6 mol.% K;0.Glass according to any one of claims 1-13, wherein the composition of the components comprises: e greater than or equal to 23.0 mol% and less than or equal to 33.0 mol% B 2 O 3 , e greater than or equal to 14.5 mol% and less than or equal to 22.5 mol% La203, e greater than or equal to 8.0 mol% and less than or equal to 20.0 mol% TiO2, e greater than or equal to 6.0 mol% and less than or equal to 16.5 mol% Nb;0;, e greater than or equal to 5.0 mol% and less than or equal to 23.0 mol% WO;, e greater than or equal to 1.75 mol% and less than or equal to 7.25 mol% ZrO,, e greater than or equal to 0.0 mol% and less than or equal to 11.5 mol% SiO,, e greater than or equal to 0.0 mol% and less than or equal to 7.0 mol .% Bi,0;, + greater than or equal to 0 mol% and less than or equal to 5.75 mol% Y,0;, e greater than or equal to 0 mol% and less than or equal to 4.75 mol .% CaO, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% Ba O, e greater than or equal to 0.0 mol% and less than or equal to 3.2 mol% Li;0, e greater than or equal to 0.0 mol% and less than or equal to 3.2 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 2.4 mol% Na,0 and e greater than or equal to 0.0 mol% and less than or equal to 1.6 mol% K;0. 15. Glas volgens een der conclusies 1-14, waarbij de samenstelling van de componenten in hoofdzaak vrij van ZnO is.A glass according to any one of claims 1-14, wherein the composition of the components is substantially free of ZnO. 16. Glas volgens een der conclusies 1-15, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% Y20;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% Ta,0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% TeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol.% GeQ,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol,% PbO,Glass according to any one of claims 1-15, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% Y20; e greater than or equal to 0.0 mol .% and less than or equal to 2.0 mol% Ta,0s, e greater than or equal to 0.0 mol% and less than or equal to 2.0 mol% TeO, e greater than or equal to 0.0 mol% and less than or equal to 0.5 mol.% GeQ,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% As,0; en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% Sb,0,, en waarbij de samenstelling van de componenten e in hoofdzaak vrij van fluor is en e in hoofdzaak vrij van V,0s.e greater than or equal to 0.0 mol% and less than or equal to 0.2 mol% As,0; and e greater than or equal to 0.0 mol% and less than or equal to 0.2 mol% Sb,0, and wherein the composition of the components e is substantially free of fluorine and e is substantially free of V0.0s. 17. Glas volgens een der conclusies 1-16, waarbij het glas voldoet aan de voorwaarde: e 120.52, waarbij e Teen transmissie-index is, die is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: T, = (La,03 + Gd;0; + ZrO, + WO} / ({La;03 + Gd;0O; + ZrO, + WO; + TiO; + Nb, Os).A glass according to any one of claims 1-16, wherein the glass satisfies the condition: e 120.52, where e is Teen transmission index calculated from the glass composition in terms of mol% of the components of the formula: T , = (La,03 + Gd;O; + ZrO, + WO} / ({La;03 + Gd;OO; + ZrO, + WO; + TiO; + Nb, Os). 18. Glas volgens conclusie 17, waarbij e 120.57.The glass of claim 17, wherein e 120.57. 19. Glas volgens conclusive 18, waarbij e 062<T;<0.95.19. Glass according to conclusive 18, where e 062<T;<0.95. 20. Glas volgens een der conclusies 1-19, waarbij het glas voldoet aan de voorwaarden: es 45<Py<55en e 195<P,£2.07, waarbij e Pp, een brekingsindexparameter is, die is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (i): P, = -0.0051086 * Al,03 -0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,03 -A glass according to any one of claims 1-19, wherein the glass satisfies the conditions: es 45<Py<55 and e 195<P,£2.07, where ePp, is a refractive index parameter calculated from the glass composition in terms of mole % of the components of the formula (i): P 1 = -0.0051086 * Al.03 -0.0049247 * B.0; - 0.00034289 * BaO + 0.0086552 * Bi.03 - 0.0014511 * CaO + 0.0047429 * Gd,0; - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La,0; - 0.0023329 * Li,O - 0.0026561 * MgO - 0.0035925 * Na;0 + 0.0071165 * Nb;0s -0.0014511 * CaO + 0.0047429 * Gd,0; - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La,0; - 0.0023329 * Li,O - 0.0026561 * MgO - 0.0035925 * Na;0 + 0.0071165 * Nb;0s - 0.0075074 * P,O + 0,0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uw Ta,0;5 - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,03 +0.0075074 * P,O + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * your Ta,0;5 - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; +0.0025878 * Y.03 + 0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955,0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e P,is een dichtheidsparameter, die is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (HI): Pa (g/cm’) = 4.95 - 0.036300 * ALO; - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi20; - 0.0047086 * CaO + 0.060989 * Er,03 + 0.067356 * Gd,0; - 0.024973 * K,0 + 0.050388 * La,0; - 0.015411 * Li,0 - 0.014318 * Na,O - 0.0016283 * Nb;O; + 0.078354 * Nd,0; -e P, is a density parameter, which is calculated from the glass composition in terms of mol% of the components according to the Formula (HI): Pa (g/cm') = 4.95 - 0.036300 * ALO; - 0.028364 * B.0; +0.010786*BaO+0.077280*Bi20; - 0.0047086 * CaO + 0.060989 * Er,03 + 0.067356 * Gd,0; - 0.024973 * K.0 + 0.050388 * La.0; - 0.015411 * Li,0 - 0.014318 * Na,O - 0.0016283 * Nb;O; +0.078354 * Nd,0; - 0.045034 * P,O + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - 0.015844 * TiO, at +0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yb,0; + 0.0086588 * ZnO + 0.0043754 * ZrO, waarbij een symbool “*” vermenigvuldiging betekent.0.045034 * P,O + 0.037463 * PbO - 0.026153 * SiO, - 0.0079191 * TeO, - 0.015844 * TiO, at +0.020220 * WO; + 0.016362 * Y.03 + 0.058765 * Yb.0; + 0.0086588 * ZnO + 0.0043754 * ZrO, where a symbol “*” means multiplication. 21. Glas volgens een der conclusies 1-20, waarbij het glas omvat e een dichtheid bij kamertemperatuur, dar, welke groter dan of gelijk aan 4.5 g/cm? is en kleiner dan of gelijk aan 5.5 g/cm? en e een brekingsindex bij 587.56 nm, ny, welke groter dan of gelijk aan 1.95 isen kleiner dan of gelijk aan 2.07.A glass according to any one of claims 1-20, wherein the glass comprises a density at room temperature, dar, which is greater than or equal to 4.5 g/cm? is and less than or equal to 5.5 g/cm? and e is a refractive index at 587.56 nm, ny, which is greater than or equal to 1.95 and less than or equal to 2.07. 22. Glas volgens een der conclusies 1-21, waarbij e de liquidustemperatuur, Tig, kleiner dan of gelijk aan 1100 °C is.A glass according to any one of claims 1 to 21, wherein e is the liquidus temperature, Tig, less than or equal to 1100°C. 23. Glas volgens conclusie 22, waarbij es de liquidustemperatuur, Tig kleiner dan of gelijk aan 1050 °C is.The glass of claim 22, wherein es is the liquidus temperature, Tig less than or equal to 1050°C. 24. Glas volgens een der conclusies 1-23, waarbij het glas omvat * een Briggse logaritme van liquidusviscositeit, Log{n, [P]), die groter dan of gelijk aan 0.50 is.A glass according to any one of claims 1-23, wherein the glass comprises * a Briggs logarithm of liquidus viscosity, Log(n, [P]), which is greater than or equal to 0.50. 25. Glas volgens conclusie 24, waarbij e de Briggse logaritme van liquidusviscositeit, Log{nq [P]), groter dan of gelijk aanThe glass of claim 24, wherein e is the Briggs logarithm of liquidus viscosity, Log{nq [P]), greater than or equal to 0.75 is.0.75. 26. Glas volgens een der conclusies 1-25, waarbij, wanneer gekoeld in lucht vanaf 1100 °C naar 500 °C in 2.5 minuten, het glas niet kristalliseert.A glass according to any one of claims 1-25, wherein when cooled in air from 1100°C to 500°C in 2.5 minutes, the glass does not crystallize. 27. Glas volgens een der conclusies 1-26, waarbij, wanneer het een dikte heeft van 10 mm, het glas kan worden gebleekt in minder dan of gelijk aan 96 uur bij een temperatuur minder dan of gelijk aan 700 °C.A glass according to any one of claims 1 to 26, wherein when it has a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature less than or equal to 700°C. 28. Werkwijze voor het vervaardigen van een optisch element, de werkwijze omvattende het verwerken van het glas volgens een der conclusies 1-27.A method for manufacturing an optical element, the method comprising processing the glass according to any one of claims 1 to 27. 29. Optisch element omvattende het glas volgens een der conclusies 1-27.An optical element comprising the glass according to any one of claims 1 to 27. 30. Glas omvattende een veelvoud aan componenten, het glas omvattende een samenstelling van de componenten omvattende: e groter dan of gelijk aan 7.5 mol.% en kleiner dan of gelijk aan 28.0 mol.% TiO,, e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% B;03, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 19.5 mol.% Nb, Os, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% WO;3, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% La,0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 25.0 mol,% Gd;0;3, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% Bi203, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% ZrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% TeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 13.5 mol.% SiO,, e groter dan of gelijk aan 0,0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Al,03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% ThO,, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% GeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Ta20;5, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% PbO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.0 mol.% V20,, e groter dan of gelijk aan 0.0 at.% en kieiner dan of gelijk aan 5.0 at.% F, e groter dan of gelijk aan 0,0 at.% en kleiner dan of gelijk aan 1.0 at.% C, e groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 1.0 at.% Br, + groter dan of gelijk aan 0.0 at.% en kleiner dan of gelijk aan 1.0 at.% |, e groter dan of gelijk aan 10.0 mol.% RE;Q; + ZrO; + TiO; + Nb;0; + WO;, e kleiner dan of gelijk aan 40.0 mol.% WO; + TiO,,30. Glass comprising a plurality of components, the glass comprising a composition of the components comprising: e greater than or equal to 7.5 mol% and less than or equal to 28.0 mol% TiO 2 , e greater than or equal to 1.0 mol .% and less than or equal to 40.0 mol% B;03, e greater than or equal to 0.3 mol% and less than or equal to 19.5 mol% Nb, Os, e greater than or equal to 0.0 mol% and less than or equal to 35.0 mol% WO;3, e greater than or equal to 0.0 mol% and less than or equal to 25.0 mol% La,0;, e greater than or equal to 0.0 mol% and less than or equal to 25.0 mol.% Gd;0;3, + greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol.% Bi203, e greater than or equal to 0.0 mol.% and less than or equal to 20.0 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 20.0 mol% TeO, e greater than or equal to 0.0 mol% and less than or equal to 13.5 mol .% SiO,, e greater than or equal to 0.0 mol.% and small r than or equal to 10.0 mol.% Al,03, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, + greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% GeO,, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% Ta20;5, e greater than or equal to 0.0 mol.% and less than or equal to 5.0 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 1.0 mol.% V20,, e greater than or equal to 0.0 at.% and less than or equal to 5.0 at.% F, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% C, e greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% Br, + greater than or equal to 0.0 at.% and less than or equal to 1.0 at.% |, e greater than or equal to 10.0 mol% RE;Q; + ZrO; + TiO; + Nb;0; + WO;, e less than or equal to 40.0 mol% WO; + TiO,, e kleiner dan of gelijk aan 35.0 mol.% TiO; + Nb,0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% R,0 + RO en e optioneel omvattende P,0s, waarbij de samenstelling van de componenten voldoet aan de voorwaarden: e TiO, -Si0; [mol%] 2 7.5 en e B,0; + SiO; - P;Os [mol.%] > 0.00, en waarbij het glas voldoet aan de voorwaarden: e 19<P,<21en e Per-(0.269-0.12 * T) > 0.00, waarbij e Pp, een brekingsindexparameter is, die is berekend vanuit de glassamensteliing in termen van mol.% van de componenten volgens de Formule (H): P, = -0.0051086 * Al,0; - 0.0049247 * B,0; - 0.00034289 * BaO + 0,0086552 * Bi;0; -e less than or equal to 35.0 mol% TiO; + Nb,0s, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% R,0 + RO and e optionally including P,0s, where the composition of the components satisfies the conditions: e TiO, -SiO; [mol%] 2 7.5 and e B0.0; + SiO; - P;Os [mol.%] > 0.00, and where the glass satisfies the conditions: e 19<P,<21 and e Per-(0.269-0.12 * T) > 0.00, where e Pp, is a refractive index parameter, which is calculated from the glass composition in terms of mole % of the components of the Formula (H): P 1 = -0.0051086 * Al1.0; - 0.0049247 * B.0; - 0.00034289 * BaO + 0.0086552 * Bi;0; - 0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La;03 - 0.0023329 * Li,0 -0.0026561 * MgO - 0.0035925 * Na,O + 0.0071165 * Nb,0; -0.0014511 * CaO + 0.0047429 * Gd,03 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La;03 - 0.0023329 * Li,0 -0.0026561 * MgO - 0.0035925 * Na,O + 0.0071165 * Nb,0; - 0.0075074 * P,O, + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * uw Ta20; - 0.0015272 * TeO, + 0.0020281 * TiO, + 0,0012709 * WO; + 0.0025878 * Y,03 +0.0075074 * P,O, + 0.0015814 * PhO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * your Ta20; - 0.0015272 * TeO, +0.0020281 * TiO, +0.0012709 * WO; +0.0025878 * Y.03 + 0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e Pe is een brekingsparameter, die is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (IV): Pres (cm®/g) = 0.000087034 * SiO; - 0.00012035 * B,0, - 0.0012566 * La,0; + 0.0011411 * TiO, - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb.Os - 0.00023383 * MgO -0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e Pe is a refractive parameter calculated from the glass composition in terms of mol% of the components according to the Formula (IV): Pres (cm®/g) = 0.000087034 * SiO; - 0.00012035 * B.0, - 0.0012566 * La.0; + 0.0011411 * TiO, - 0.00031654 * ZnO + 0.000088066 * CaO + 0.0020444 * Nb.Os - 0.00023383 * MgO - 0.00086501 * BaO - 0.0004486 * WO; - 0.0014114 * Gd,0; - 0.00023872 * Y,0; -0.00086501 * BaO - 0.0004486 * WO; - 0.0014114 * Gd,0; - 0.00023872 * Y.0; - 0.00031575 * Ta,0s + 0.00011894 * Li,O + 0.00027178 * Al; 0; - 0.000099802 * Na,0 - w0.00031575 * Ta.0s + 0.00011894 * Li.O + 0.00027178 * Al; 0; - 0.000099802 * Na,0 - w 0.00028391 * GeO; - 0.00030531 * SrO - 0.00072061 * Bi; 0; - 0.0010964 * Yb;03 +0.00028391 * GeO; - 0.00030531 * SrO - 0.00072061 * Bi; 0; - 0.0010964 * Yb;03 + 0.00022839 * K,0 - 0.00086617 * PhO + 0.00027129 * TeO, + 0.198, waarbij RE,03 een totale som van zeldzame aardmetaaloxiden in trivalente equivalent is, R,0 een totale som van monovalente metaaloxiden, RO een totale som van divalente metaaloxiden, en een asterisk (*} vermenigvuldiging betekent.0.00022839 * K,0 - 0.00086617 * PhO + 0.00027129 * TeO, + 0.198, where RE,03 is a total sum of rare earth metal oxides in trivalent equivalent, R,0 is a total sum of monovalent metal oxides, RO is a total sum of divalent metal oxides, and an asterisk (*} means multiplication. 31. Glas volgens conclusie 30, waarbij het glas omvat:The glass of claim 30, wherein the glass comprises: e een brekingsindex bij 587.56 nm, n4, welke groter dan of gelijk aan 1.9 is en kleiner dan of gelijk aan 2.1 en waarbij het glas voldoet aan de voorwaarde: e (ng-1)/dpy-(0.269-0.12 *T) > 0.00, waarbij e dr {g/cm3} een dichtheid bij kamertemperatuur is, e T; een transmissie-index is, welke is brekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: T, = (La,03 + Gd;0; + ZrO, + WO} / ({La;03 + Gd;0O; + ZrO, + WO; + TiO; + Nb, Os).e a refractive index at 587.56 nm, n4, which is greater than or equal to 1.9 and less than or equal to 2.1 and where the glass satisfies the condition: e (ng-1)/dpy-(0.269-0.12 *T) > 0.00, where e dr {g/cm 3 } is a density at room temperature, e T; is a transmission index which is refractive from the glass composition in terms of mol% of the components of the formula: T, = (La,03 + Gd;0; + ZrO, + WO} / ({La;03 + Gd;OO;+ZrO;+WO;+TiO;+Nb,Os). 32. Glas volgens een der conclusies 30-31, waarbij het glas voldoet aan de voorwaarde: e (nel)/drr-{0.274 -0.12 *T) > 0.00, waarbij e ng een brekingsindex bij 587.56 nm is, e dg {g/cm} een dichtheid bij kamertemperatuur is, e en T;een transmissie-index is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: Ti = {La203 + Gd;O3 + ZrO, + WO:3) / {La203 + Gd;03 + ZrO; + WO; + TiO, + Nb,Os).A glass according to any one of claims 30-31, wherein the glass satisfies the condition: e (nel)/drr-{0.274 -0.12 *T) > 0.00, where e ng is a refractive index at 587.56 nm, e dg {g /cm} is a density at room temperature, e and T; is a transmission index calculated from the glass composition in terms of mol% of the components according to the formula: Ti = {La2 O3 + Gd;O3 + ZrO, + WO:3) / {La2 O3 + Gd;O3 + ZrO; + WO; + TiO, + Nb, Os). 33. Glas volgens een der conclusies 30-32, waarbij het glas voldoet aan de voorwaarde: e Per-(0.274-0,12 * T) > 0.00, waarbij e T;ieen transmissie-index is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: T, = ({La;03 + Gd;03 + ZrO, + WO:) / {La;03 + Gd;03 + ZrO, + WO; + TiO; + Nb,0s).A glass according to any one of claims 30 to 32, wherein the glass satisfies the condition: e Per-(0.274-0.12 * T) > 0.00, wherein e T i is a transmission index calculated from the glass composition in terms of mole % of the components of the formula: T, = ({La;O3 + Gd;O3 + ZrO, + WO:) / {La;O3 + Gd;O3 + ZrO, + WO; + TiO; + Nb,0s). 34. Glas volgens een der conclusies 30-33, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 7.5 mol.% en kleiner dan of gelijk aan 19.0 mol.% TiO, en e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 19,0 mol.% Nb,Os.A glass according to any one of claims 30-33, wherein the composition of the components comprises: e greater than or equal to 7.5 mol% and less than or equal to 19.0 mol% TiO, and e greater than or equal to 1.0 mol .% and less than or equal to 19.0 mol% Nb,Os. 35. Glas volgens een der conclusies 30-34, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 5.0 mol.% La,0; en e groter dan of gelijk aan 5.0 mol.% Nb,Os.A glass according to any one of claims 30-34, wherein the composition of the components comprises: e greater than or equal to 5.0 mol% La.0; and e greater than or equal to 5.0 mol% Nb,Os. 36. Glas volgens een der conclusies 30-35, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 6.0 mol.% WO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% P,0s, e groter dan of gelijk aan 95.0 mol.% RO: en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% Al;03 + REO, waarbij REO, een totale som van zeldzame aardmetaaloxiden is, en RnO, een totale som van alle oxiden.A glass according to any one of claims 30-35, wherein the composition of the components comprises: e greater than or equal to 6.0 mol% WO, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol. %P,0s, e greater than or equal to 95.0 mol% RO: and e greater than or equal to 0.0 mol% and less than or equal to 30.0 mol% Al;03 + REO, where REO, a total sum of rare earth oxides, and RnO, is a total sum of all oxides. 37. Glas volgens een der conclusies 30-36, waarbij de samenstelling van de componenten omvat: + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% R,0 + RO.Glass according to any one of claims 30-36, wherein the composition of the components comprises: + greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% R10 + RO. 38. Glas volgens conclusie 37, waarbij de samenstelling van de componenten omvat: + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.0 mol.% R20 + RO.The glass of claim 37, wherein the composition of the components comprises: + greater than or equal to 0.0 mol% and less than or equal to 1.0 mol% R 2 O + RO. 39. Glas volgens een der conclusies 30-38, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.5 mol.% Si0,.A glass according to any one of claims 30-38, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 4.5 mol% SiO 3 . 40. Glas volgens een der conclusies 30-36, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% BOs, e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% La,0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% WO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Bi203, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Y20;,A glass according to any one of claims 30-36, wherein the composition of the components comprises: e greater than or equal to 10.0 mol% and less than or equal to 40.0 mol% BOs, e greater than or equal to 10.0 mol. % and less than or equal to 25.0 mol% La,0, e greater than or equal to 0.0 mol% and less than or equal to 30.0 mol% WO, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Bi203, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Y20;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% ZrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol.% CaO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% Li,0, e groter dan of gelijk aan 0.0 mo!.% en kleiner dan of gelijk aan 4.0 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.0 mol.% Na20 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% K;0.e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 7.5 mol% CaO, + greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% BaO, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% Li,0, e greater than or equal to 0.0 mol!. % and less than or equal to 4.0 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 3.0 mol% Na20 and e greater than or equal to 0.0 mol% and less than or equal at 2.0 mol% K;0. 41. Glas volgens een der conclusies 30-36, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 21.5 mol.% en kleiner dan of gelijk aan 34.5 mol.% B,03, e groter dan of gelijk aan 13.0 mol.% en kleiner dan of gelijk aan 24.0 mol.% La,0,, e groter dan of gelijk aan 7.5 mol.% en kleiner dan of gelijk aan 22.0 mol.% TiO,, e groter dan of gelijk aan 4.5 mol.% en kleiner dan of gelijk aan 18.0 mol.% Nb,0s, e groter dan of gelijk aan 2.0 mol.% en kleiner dan of gelijk aan 26.0 mol.% WO;3, + groter dan of gelijk aan 0.5 mol.% en kleiner dan of gelijk aan 8.0 mol.% ZrO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 12.5 mol.% Si0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol.% Bi,03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 6.5 mol.% Y;03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.5 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.6 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% Li,0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.7 mol.% Na20 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.8 mol.% K;0.Glass according to any one of claims 30-36, wherein the composition of the components comprises: e greater than or equal to 21.5 mol% and less than or equal to 34.5 mol% B.03, e greater than or equal to 13.0 mol% and less than or equal to 24.0 mol% La,0, e greater than or equal to 7.5 mol% and less than or equal to 22.0 mol% TiO2, e greater than or equal to 4.5 mol. % and less than or equal to 18.0 mol% Nb,0s, e greater than or equal to 2.0 mol% and less than or equal to 26.0 mol% WO;3, + greater than or equal to 0.5 mol% and less than or equal to 8.0 mol% ZrO,, e greater than or equal to 0.0 mol% and less than or equal to 12.5 mol% SiO,, e greater than or equal to 0.0 mol% and less than or equal at 7.5 mol% Bi,03, e greater than or equal to 0.0 mol% and less than or equal to 6.5 mol% Y;03, e greater than or equal to 0.0 mol% and less than or equal to 5.5 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 4.6 mol% BaO, e greater than or equal to 0.0 mol% and less than or equal to 3.6 mol% Li,0, e greater than or equal to 0.0 mol% and less than or equal to 3.6 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 2.7 mol% Na2O and e greater than or equal to 0.0 mol% and less than or equal to 1.8 mol% K;0. 42. Glas volgens een der conclusies 30-37, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 23.0 mol.% en kleiner dan of gelijk aan 33.0 mol.% B;03, e groter dan of gelijk aan 14.5 mol.% en kleiner dan of gelijk aan 22.5 mol.% La;0;, e groter dan of gelijk aan 8.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% TiO,, e groter dan of gelijk aan 6,0 mol.% en kleiner dan of gelijk aan 16.5 mol.% Nb,0Os, e groter dan of gelijk aan 5.0 mol.% en kleiner dan of gelijk aan 23.0 mol.% WO,,Glass according to any one of claims 30-37, wherein the composition of the components comprises: e greater than or equal to 23.0 mol% and less than or equal to 33.0 mol% B;03, e greater than or equal to 14.5 mol% and less than or equal to 22.5 mol% La;0;, e greater than or equal to 8.0 mol% and less than or equal to 20.0 mol% TiO;, e greater than or equal to 6.0 mol% and less than or equal to 16.5 mol% Nb0.0Os, e greater than or equal to 5.0 mol% and less than or equal to 23.0 mol% WO,, e groter dan of gelijk aan 1.75 mol.% en kleiner dan of gelijk aan 7.25 mol.% ZrO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 11.5 mol.% SiO,, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.0 mol.% Bi,03, e groter dan of gelijk aan 0 mol.% en kleiner dan of gelijk aan 5.75 mol.% Y;03, e groter dan of gelijk aan 0 mol.% en kleiner dan of gelijk aan 4.75 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% Li,0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.4 mol.% Na,0 en + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.6 mol.% KO.e greater than or equal to 1.75 mol% and less than or equal to 7.25 mol% ZrO,, e greater than or equal to 0.0 mol% and less than or equal to 11.5 mol% SiO,, + greater than or equal to 0.0 mol% and less than or equal to 7.0 mol% Bi,03, e greater than or equal to 0 mol% and less than or equal to 5.75 mol% Y;03, e greater than or equal to 0 mol% and less than or equal to 4.75 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% BaO, e greater than or equal to 0.0 mol% and less than or equal to 3.2 mol% Li,0, e greater than or equal to 0.0 mol% and less than or equal to 3.2 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 2.4 mol% Na,0 and + greater than or equal to 0.0 mol% and less than or equal to 1.6 mol% KO. 43. Glas volgens een der conclusies 30-42, waarbij de samenstelling van de componenten e in hoofdzaak vrij van ZnO is.A glass according to any one of claims 30-42, wherein the composition of the components e is substantially free of ZnO. 44. Glas volgens een der conclusies 30-43, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% Y;0;3, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2,0 mol.% Ta,0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% TeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol.% GeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol.% PbO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% As,0; and e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% Sb;0;3, en waarbij de samenstelling van de componenten e in hoofdzaak vrij van fluor is en e in hoofdzaak vrij van V,0s.Glass according to any one of claims 30-43, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% Y;0;3, e greater than or equal at 0.0 mol% and less than or equal to 2.0 mol% Ta,0;, e greater than or equal to 0.0 mol% and less than or equal to 2.0 mol% TeO,, e greater than or equal at 0.0 mol.% and less than or equal to 0.5 mol.% GeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% PbO, e greater than or equal to 0.0 mol.% and less than or equal to 0.2 mol% As,0; and e greater than or equal to 0.0 mol% and less than or equal to 0.2 mol% Sb;0;3, and wherein the composition of the components e is substantially free of fluorine and e is substantially free of V,0s . 45. Glas volgens een der conclusies 30-44, waarbij het glas voldoet aan de voorwaarde: e Ti20.52, waarbij e T een transmissie-index is, welke is brekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: T;= (La,03 + Gd;03 + ZrO, + WO3) / {La203 + Gd;0O: + ZrO; + WO; + TiO; + Nb,Os).A glass according to any one of claims 30 to 44, wherein the glass satisfies the condition: eTi20.52, where eT is a transmission index which is refractive from the glass composition in terms of mol% of the components according to the formula: T;= (La,03 + Gd;03 + ZrO, + WO3) / {La203 + Gd;OO: + ZrO; + WO; + TiO; + Nb,Os). 46. Glas volgens conclusie 45, waarbij e 120.57.The glass of claim 45, wherein e is 120.57. 47. Glas volgens conclusie 46, waarbij e 0.62<T;<0.95.The glass of claim 46, wherein e is 0.62<T;<0.95. 48. Glas volgens een der conclusies 30-47, waarbij het glas voldoet aan de voorwaarden: e 45<Py<55en e 195<P,<2407, waarbij es Pg een dichtheidsparameter is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (iit): P4 (g/cm) = 4.95 - 0.036300 * Al,03 - 0.028364 * B,03 + 0.010786 * BaO + 0.077280 * Bi,0: - 0.0047086 * CaO + 0.060989 * £r,0; + 0.067356 * Gd,0; - 0.024973 * K,0 + 0.050388 * La,0; - 0.015411 * Lj,O - 0.014318 * Na, 0 - 0.0016283 * Nb,0s + 0.078354 * Nd,0; -A glass according to any one of claims 30 to 47, wherein the glass satisfies the conditions: e 45<Py<55 and e 195<P,<2407, where esPg is a density parameter calculated from the glass composition in terms of moles .% of components according to the Formula (iit): P4 (g/cm) = 4.95 - 0.036300 * Al,03 - 0.028364 * B.03 + 0.010786 * BaO + 0.077280 * Bi,0: - 0.0047086 * CaO + 0.060989 * £r,0; +0.067356 * Gd,0; - 0.024973 * K.0 + 0.050388 * La.0; - 0.015411 * Lj,O - 0.014318 * Na, 0 - 0.0016283 * Nb,0s + 0.078354 * Nd,0; - 0.045034 * P,05 + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * Te, - 0.015844 * TiO, (i) + 0.020220 * WO; + 0.016362 * Y,03 + 0.058765 * Yb,0; + 0.0086588 * ZnO + 0.0043754 * ZrO.. 49, Glas volgens een der conclusies 30-48, waarbij het glas omvat e een dichtheid bij kamertemperatuur, dgr, welke groter dan of gelijk aan 4.5 g/cm? is en kleiner dan of gelijk aan 5.5 g/cm? en e een brekingsindex bij 587.56 nm, n4, welke groter dan of gelijk aan 1.95 is en kleiner dan of gelijk aan 2.07.0.045034 * P.05 + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * Te, - 0.015844 * TiO, (i) + 0.020220 * WO; + 0.016362 * Y.03 + 0.058765 * Yb.0; +0.0086588 * ZnO + 0.0043754 * ZrO.. 49 Glass according to any one of claims 30-48, wherein the glass comprises a density at room temperature, dgr, which is greater than or equal to 4.5 g/cm? is and less than or equal to 5.5 g/cm? and e a refractive index at 587.56 nm, n4, which is greater than or equal to 1.95 and less than or equal to 2.07. 50. Glas volgens een der conclusies 30-49, waarbij het glas omvat e een liquidustemperatuur, Tig, welke kleiner dan of gelijk aan 1100 °C is.A glass according to any one of claims 30-49, wherein the glass comprises e a liquidus temperature, Tig, which is less than or equal to 1100°C. 51. Glas volgens conclusie 50, waarbij e de liquidustemperatuur, Tig, kleiner dan of gelijk aan 1050 °C is.The glass of claim 50, wherein e is the liquidus temperature, Tig, less than or equal to 1050°C. 52. Glas volgens een der conclusies 30-51, waarbij het glas omvat e een Briggse logaritme van liquidusviscositeit, Log{nq, [P]), die groter dan of gelijk aan 0.50 is.A glass according to any one of claims 30-51, wherein the glass comprises e a Briggs logarithm of liquidus viscosity, Log{nq, [P]), which is greater than or equal to 0.50. 53. Glas volgens conclusie 52, waarbij e de Briggse logaritme van liquidusviscositeit, Log(n, [P]), groter dan of gelijk aanThe glass of claim 52, wherein e is the Briggs logarithm of liquidus viscosity, Log(n, [P]), greater than or equal to 0.75 is.0.75. 54. Glas volgens een der conclusies 30-53, waarbij, wanneer gekoeld in lucht vanaf 1100 °C naar 500 °C in 2.5 minuten, het glas niet kristalliseert.The glass of any one of claims 30-53, wherein when cooled in air from 1100°C to 500°C in 2.5 minutes, the glass does not crystallize. 55. Glas volgens een der conclusies 30-54, waarbij, wanneer het een dikte van 10 mm heeft, het glas kan worden gebleekt in minder dan of gelijk aan 96 uur bij een temperatuur kleiner dan of gelijk aan 700 °C.A glass according to any one of claims 30 to 54, wherein when it has a thickness of 10 mm, the glass can be bleached in less than or equal to 96 hours at a temperature of less than or equal to 700°C. 56. Werkwijze voor het vervaardigen van een optisch element, de werkwijze omvattende het verwerken van het glas volgens een der conclusies 30-55.A method for manufacturing an optical element, the method comprising processing the glass according to any one of claims 30-55. 57. Optisch element omvattende het glas volgens een der conclusies 30-55. An optical element comprising the glass according to any one of claims 30-55. 58, Glas omvattende een veelvoud aan componenten, het glas omvattende een samenstelling van de componenten omvattende: e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% WO;3, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 20.0 mol.% ZrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% B;03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% La203, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% Bi:0,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% ZnO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% Ta,0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% ALO,58, Glass comprising a plurality of components, the glass comprising a composition of the components comprising: e greater than or equal to 1.0 mol% and less than or equal to 40.0 mol% WO;3, e greater than or equal to 0.3 mol% and less than or equal to 20.0 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 40.0 mol% B;03, e greater than or equal to 0.0 mol% and less than or equal to 35.0 mol% La203, e greater than or equal to 0.0 mol% and less than or equal to 35.0 mol% Bi:0, e greater than or equal to 0.0 mol% and less than or equal to 35.0 mol% ZnO, + greater than or equal to 0.0 mol% and less than or equal to 25.0 mol% Ta,0s, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol .% ALO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% ThO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% TeO,, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% V;0;, e groter dan of gelijk aan 10.0 mol.% RE;03 + ZrO, + TiO, + Nb;0; + WO;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 35.0 mol.% TiO, + Nb,Os, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.8 mol.% SiO, + GeO; en e optioneel omvattende één of meer componenten geselecteerd uit P,Os, BaO, CaO, K,0, Li,0, MgO, Na20, PbO en SrO, waarbij de samenstelling van de componenten voldoet aan de voorwaarde: e B;03+Si0, - P,Os [moi.%] > 0.50, en waarbij het glas voldoet aan de voowaarden: e 500 °C< Pig < 700 °C, e Pa<6,0 g/m’ en e P,-{1.571+0,083 * Py) > 0.00, waarbij e Pp, een brekingsindexparameter is, welke is berekende vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (it): P, =-0.0051086 * Al,O3 - 0.0049247 * B,0; - 0.00034289 * BaO + 0.0086552 * Bi,;0; -e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% ThO,, e greater than or equal to 0.0 mol.% and less than or equal to 10.0 mol.% TeO,, + greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% V;0;, e greater than or equal to 10.0 mol% RE;03 + ZrO, + TiO, + Nb;0; + WO 2 , e greater than or equal to 0.0 mol% and less than or equal to 35.0 mol% TiO, + Nb,Os, e greater than or equal to 0.0 mol% and less than or equal to 4.8 mol. % SiO, + GeO; and e optionally comprising one or more components selected from P,Os, BaO, CaO, K,0, Li,0, MgO, Na2O, PbO and SrO, wherein the composition of the components satisfies the condition: e B;03+ Si0, - P,Os [moi.%] > 0.50, and where the glass meets the conditions: e 500 °C< Pig < 700 °C, e Pa<6.0 g/m' and e P,-{ 1.571+0.083 * Py) > 0.00, where e Pp, is a refractive index parameter, which is calculated from the glass composition in terms of mol% of the components according to the Formula (it): P, =-0.0051086 * Al,O3 - 0.0049247 * B.0; - 0.00034289 * BaO + 0.0086552 * Bi 0.1; - 0.0014511 * CaO + 0.0047429 * Gd,05 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La;03 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb;0; -0.0014511 * CaO + 0.0047429 * Gd,05 - 0.0033126 * GeO, - 0.0049544 * K,0 + 0.0045475 * La;03 - 0.0023329 * Li,0 - 0.0026561 * MgO - 0.0035925 * Na,0 + 0.0071165 * Nb;0; - 0.0075074 * P,O, + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta20s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; + 0.0025878 * Y,0; +0.0075074 * P,O, + 0.0015814 * PbO - 0.0043959 * SiO, - 0.00086373 * SrO + 0.0045915 * w Ta20s - 0.0015272 * TeO, + 0.0020281 * TiO, + 0.0012709 * WO; +0.0025878 * Y,0; + 0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, e P, een dichtheidsparameter is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule (iil):0.0048156 * Yb,0; - 0.00047962 * ZnO + 0.00090073 * ZrO, + 1.955, eP, is a density parameter calculated from the glass composition in terms of mol% of the components of the Formula (iil): Pa (g/cm?) = 4.95 - 0.036300 * ALO; - 0.028364 * B,0; + 0.010786 * BaO + 0.077280 * Bi, 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,05 - 0.024973 * K,0 + 0.050388 * La:03 - 0.015411 * Li,0 - 0.014318 * Na,0 - 0.0016283 * Nb;O; + 0.078354 * Nd,0; -Pa (g/cm?) = 4.95 - 0.036300 * ALO; - 0.028364 * B.0; + 0.010786 * BaO + 0.077280 * Bi, 0; - 0.0047086 * CaO + 0.060989 * Er,0; + 0.067356 * Gd,05 - 0.024973 * K,0 + 0.050388 * La:03 - 0.015411 * Li,0 - 0.014318 * Na,0 - 0.0016283 * Nb;O; +0.078354 * Nd,0; - 0.045034 * P,0s + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i) +0.020220 * WO; + 0.016362 * Y,05 + 0.058765 * Yb,05 + 0.0086588 * ZnO + 0.0043754 * ZrO, es Py een T,- parameter is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de Formule {V): Pis (°C) = 595.358 - 0.63217 * B,03 - 0.46552 * SiO, + 1.1849 * TiO, + 0.59610 * Nb;0; -0.045034 * P.0s + 0.037463 * PbO - 0.026153 * SiO; - 0.0079191 * TeO, - 0.015844 * TiO, i) +0.020220 * WO; + 0.016362 * Y.05 + 0.058765 * Yb,05 + 0.0086588 * ZnO + 0.0043754 * ZrO, es Py is a T,- parameter, which is calculated from the glass composition in terms of mol% of the components according to the Formula {V ): Pis (°C) = 595.358 - 0.63217 * B.03 - 0.46552 * SiO, + 1.1849 * TiO, + 0.59610 * Nb;0; - 1.6293 * WO; + 1,3877 * ZrO, + 4.4090 * La,0; + 4.1695 * Y,0; - 5.0756 * Bi,0; + 0.55630 * CaO -5.3892 * PhO - 4.2774 * TeO, + 1.8497 * Al,03 - 0.40659 * GeO; - 1.7011 * ZnO - WV)1.6293 * WO; + 1.3877 * ZrO, + 4.4090 * La.0; + 4.1695 * Y,0; - 5.0756 * Bi.0; + 0.55630 * CaO -5.3892 * PhO - 4.2774 * TeO, + 1.8497 * Al.03 - 0.40659 * GeO; - 1.7011 * ZnO - WV) 4.1520 * Li,O + 3.0777 * Gd,0;, waarbij RE;03 een totale som van zeldzame aardmetaaloxiden in trivalente equivalent is, en een asterisk (*} vermenigvuldiging betekent.4.1520 * Li,O + 3.0777 * Gd,0;, where RE;03 is a total sum of rare earth metal oxides in trivalent equivalent, and an asterisk (*} denotes multiplication. 59. Glas volgens conclusie 58, waarbij het glas omvat e een glasovergangstemperatuur, T,, welke groter dan of gelijk aan 500 °C is en kleiner dan of gelijk aan 700 °C en e een dichtheid bij kamertemperatuur, dar, welke kleiner dan of gelijk aan 6.0 g/cm?is en waarbij het glas voldoet aan de voorwaarde: e n4-(1.571 + 0.083 * der) > 0.00, waarbij e ny een brekingsindex bij 587.56 nm is.The glass of claim 58, wherein the glass comprises e a glass transition temperature, T i , which is greater than or equal to 500°C and less than or equal to 700°C and e a density at room temperature, dar, which is less than or is equal to 6.0 g/cm? and where the glass satisfies the condition: e n4-(1.571 + 0.083 * der) > 0.00, where e ny is a refractive index at 587.56 nm. 60. Glas volgens een der conclusies 58-59, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 19.0 mol.% Nb20: en e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 19.0 mol.% TiO,.A glass according to any one of claims 58-59, wherein the composition of the components comprises: e greater than or equal to 1.0 mol% and less than or equal to 19.0 mol% Nb 2 O: and e greater than or equal to 1.0 mol .% and less than or equal to 19.0 mol% TiO 3 . 61. Glas volgens een der conclusies 58-60, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 5.0 mol.% La;03,A glass according to any one of claims 58-60, wherein the composition of the components comprises: e greater than or equal to 5.0 mol% La;O 3 , e groter dan of gelijk aan 5.0 mol.% Nb,Os en e groter dan of gelijk aan 5.0 mol.% TiO,.e greater than or equal to 5.0 mole percent Nb,Os and e greater than or equal to 5.0 mole percent TiO3. 62. Glas volgens een der conclusies 58-61, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 6.0 mol.% WO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% Bi, 0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% P,0s, e groter dan of gelijk aan 95.0 mol.% RO, en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% ALO: + REMO, waarbij RE,„O, een totale som van zeldzame aardmetaaloxiden is, en RO, een totale som van alle oxiden.A glass according to any one of claims 58-61, wherein the composition of the components comprises: e greater than or equal to 6.0 mol% WO, e greater than or equal to 0.0 mol% and less than or equal to 20.0 mol. % Bi, 0s, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% P,0s, e greater than or equal to 95.0 mol% RO, and e greater than or equal to 0.0 mol .% and less than or equal to 30.0 mol% ALO: + REMO, where RE, n O, is a total sum of rare earth metal oxides, and RO, is a total sum of all oxides. 63. Glas volgens een der conclusies 58-62, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% R,0 + RO, waarbij R,0 een totale som van monovalente metaaloxiden is, en RO een totale som van divalente metaaloxiden.A glass according to any one of claims 58-62, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% R,0 + RO, wherein R,0 is a total sum of monovalent metal oxides, and RO is a total sum of divalent metal oxides. 64. Glas volgens conclusie 63, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.0 mol.% R20 + RO.The glass of claim 63, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 1.0 mol% R 2 O + RO. 65. Glas volgens een der conclusies 58-64, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.5 mol.% SiO,.A glass according to any one of claims 58-64, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 4.5 mol% SiO 3 . 66. Glas volgens een der conclusies 58-62, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 40.0 mol.% B:03, e groter dan of gelijk aan 10.0 mol.% en kleiner dan of gelijk aan 25.0 mol.% La,0;, e groter dan of gelijk aan 1.0 mol.% en kleiner dan of gelijk aan 30.0 mol.% WO;3, + groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 30.0 mol.% TiO;,A glass according to any one of claims 58-62, wherein the composition of the components comprises: e greater than or equal to 10.0 mol% and less than or equal to 40.0 mol% B:03, e greater than or equal to 10.0 mol% and less than or equal to 25.0 mol% La,0;, e greater than or equal to 1.0 mol% and less than or equal to 30.0 mol% WO;3, + greater than or equal to 0.3 mol .% and less than or equal to 30.0 mol% TiO;, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 20.0 mol.% Nb,0s, e groter dan of gelijk aan 0.3 mol.% en kleiner dan of gelijk aan 10.0 mol.% ZrO,, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.8 mol.% SiO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Bi, 03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 10.0 mol.% Y,0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.0 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% Li;0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% SrO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.0 mol.% Na;0 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% K20.e greater than or equal to 0.3 mol% and less than or equal to 20.0 mol% Nb,0s, e greater than or equal to 0.3 mol% and less than or equal to 10.0 mol% ZrO,, + greater than or equal to 0.0 mol% and less than or equal to 4.8 mol% SiO, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Bi, 03, e greater than or equal to 0.0 mol% and less than or equal to 10.0 mol% Y,0;, e greater than or equal to 0.0 mol% and less than or equal to 7.5 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 5.0 mol% BaO, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% Li;0, e greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% SrO, + greater than or equal to 0.0 mol% and less than or equal to 3.0 mol% Na;0 and e greater than or equal to 0.0 mol% and less than or equal to 2.0 mol .% K20. 67. Glas volgens een der conclusies 58-62, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 21.5 mol.% en kleiner dan of gelijk aan 34.5 mol.% B;03, + groter dan of gelijk aan 13.0 mol.% en kleiner dan of gelijk aan 24.0 mol.% La;0;3, e groter dan of gelijk aan 6.0 mol.% en kleiner dan of gelijk aan 22.0 mol.% TiO;, e groter dan of gelijk aan 4.5 mol.% en kleiner dan of gelijk aan 18.0 mol.% Nb;0,, e groter dan of gelijk aan 2.0 mol.% en kleiner dan of gelijk aan 26.0 mol.% WO:3, e groter dan of gelijk aan 0.5 mol.% en kleiner dan of gelijk aan 8.0 mol.% ZrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.8 mol.% SiO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.5 mol,% Bi,03, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 6.5 mol.% Y,0;, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 5.5 mol.% CaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.6 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% Li,0, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.6 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.7 mol.% Na,0 en + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.8 mol.% K,0.A glass according to any one of claims 58-62, wherein the composition of the components comprises: e greater than or equal to 21.5 mol% and less than or equal to 34.5 mol% B;03, + greater than or equal to 13.0 mol% and less than or equal to 24.0 mol% La;0;3, e greater than or equal to 6.0 mol% and less than or equal to 22.0 mol% TiO;, e greater than or equal to 4.5 mol .% and less than or equal to 18.0 mol% Nb;0, e greater than or equal to 2.0 mol% and less than or equal to 26.0 mol% WO:3, e greater than or equal to 0.5 mol. % and less than or equal to 8.0 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 4.8 mol% SiO, e greater than or equal to 0.0 mol% and less than or equal at 7.5 mol% Bi,03, e greater than or equal to 0.0 mol% and less than or equal to 6.5 mol% Y,0;, e greater than or equal to 0.0 mol% and less than or equal to 5.5 mol% CaO, e greater than or equal to 0.0 mol% and less than or equal to 4.6 mol% Ba O, e greater than or equal to 0.0 mol% and less than or equal to 3.6 mol% Li,0, e greater than or equal to 0.0 mol% and less than or equal to 3.6 mol% SrO, e greater than or equal to 0.0 mol% and less than or equal to 2.7 mol% Na,0 and + greater than or equal to 0.0 mol% and less than or equal to 1.8 mol% K,0. 68. Glas volgens een der conclusies 58-63, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 23.0 mol.% en kleiner dan of gelijk aan 33.0 mol.% B203,A glass according to any one of claims 58-63, wherein the composition of the components comprises: e greater than or equal to 23.0 mol% and less than or equal to 33.0 mol% B 2 O 3 , e groter dan of gelijk aan 14.5 mol.% en kleiner dan of gelijk aan 22.5 mol.% La,0;, e groter dan of gelijk aan 8.0 mol.% en kleiner dan of gelijk aan 20.0 mol.% TiO,, + groter dan of gelijk aan 6.0 mol.% en kleiner dan of gelijk aan 16.5 mol.% Nb,0s, e groter dan of gelijk aan 5.0 mol.% en kleiner dan of gelijk aan 23.0 mol.% WO;, e groter dan of gelijk aan 1.75 mol.% en kleiner dan of gelijk aan 7.25 mol.% ZrO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.8 mol.% SiO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 7.0 mol.% Bi,0;, e groter dan of gelijk aan 0 mol.% en kleiner dan of gelijk aan 5.75 mol.% Y,0,, e groter dan of gelijk aan O mol.% en kleiner dan of gelijk aan 4.75 mol.% CaO, + groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 4.0 mol.% BaO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% Li20, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 3.2 mol.% SrO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.4 mol.% Na;0 en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 1.6 mol.% K;0.e greater than or equal to 14.5 mol% and less than or equal to 22.5 mol% La,0;, e greater than or equal to 8.0 mol% and less than or equal to 20.0 mol% TiO,, + greater than or equal to 6.0 mol% and less than or equal to 16.5 mol% Nb,0s, e greater than or equal to 5.0 mol% and less than or equal to 23.0 mol% WO;, e greater than or equal at 1.75 mol% and less than or equal to 7.25 mol% ZrO, e greater than or equal to 0.0 mol% and less than or equal to 4.8 mol% SiO, e greater than or equal to 0.0 mol% and less than or equal to 7.0 mol% Bi,0;, e greater than or equal to 0 mol%, and less than or equal to 5.75 mol% Y,0;, e greater than or equal to 0 mol% and less than or equal to 4.75 mol% CaO, + greater than or equal to 0.0 mol% and less than or equal to 4.0 mol% BaO, e greater than or equal to 0.0 mol% and less than or equal to 3.2 mol.% Li20, e greater than or equal to 0.0 mol.% and less than or equal to 3.2 mol.% SrO, e greater than or equal to 0.0 mol% and less than or equal to 2.4 mol% Na;0 and e greater than or equal to 0.0 mol% and less than or equal to 1.6 mol% K;0. 69. Glas volgens een der conclusies 58-68, waarbij de samenstelling van de componenten e in hoofdzaak vrij van ZnO is.A glass according to any one of claims 58-68, wherein the composition of components e is substantially free of ZnO. 70. Glas volgens een der conclusies 58-69, waarbij de samenstelling van de componenten omvat: e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% Ta;0s, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 2.0 mol.% TeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol.% GeO,, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.5 mol.% PbO, e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% As;0; en e groter dan of gelijk aan 0.0 mol.% en kleiner dan of gelijk aan 0.2 mol.% Sb203, en waarbij de samenstelling van de componenten e in hoofdzaak vrij van fluor is en e in hoofdzaak vrij van V,0s.A glass according to any one of claims 58-69, wherein the composition of the components comprises: e greater than or equal to 0.0 mol% and less than or equal to 2.0 mol% Ta;0s, e greater than or equal to 0.0 mol.% and less than or equal to 2.0 mol.% TeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol.% GeO,, e greater than or equal to 0.0 mol.% and less than or equal to 0.5 mol% PbO, e greater than or equal to 0.0 mol% and less than or equal to 0.2 mol% As;0; and e greater than or equal to 0.0 mol% and less than or equal to 0.2 mol% Sb 2 O 3 , and wherein the composition of the components e is substantially free of fluorine and e is substantially free of V0.0s. 71. Glas volgens een der conclusies 58-70, waarbij het glas voldoet aan de voorwaarde:71. Glass as claimed in any of the claims 58-70, wherein the glass satisfies the condition: e 120.52, waarbij e Teen transmissie-index is, welke is berekend vanuit de glassamenstelling in termen van mol.% van de componenten volgens de formule: T= (La,03 + Gd,0; +ZrO:+ WO:) / {La,0; + Gd,0; + ZrO; + WO; + TiO; + Nb,Os).e 120.52, where e is Teen transmission index, which is calculated from the glass composition in terms of mol% of the components according to the formula: T= (La.03 + Gd.0; +ZrO:+ WO:) / { La0.0; + Gd,0; + ZrO; + WO; + TiO; + Nb,Os). 72. Glas volgens conclusie 71, waarbij e 120.57.The glass of claim 71, wherein e is 120.57. 73. Glas volgens conclusie 72, waarbij e 0.62<T;<0.95.73. Glass according to claim 72, wherein e is 0.62<T;<0.95. 74. Glas volgens een der conclusies 58-73, waarbij het glas voldoet aan de voorwaarden: e 45<pP;<55en s 1.95<P,<2.07.74. Glass as claimed in any of the claims 58-73, wherein the glass satisfies the conditions: e 45<pP;<55 and s 1.95<P,<2.07. 75. Glas volgens een der conclusies 58-74, waarbij het glas omvat + een dichtheid bij kamertemperatuur, dgr, welke groter dan of gelijk aan 4.5 is en kleiner dan of gelijk aan 5.5 en e een brekingsindex bij 587.56 nm, n4, welke groter dan of gelijk aan 1.95 is en kleiner dan of gelijk aan 2.07.The glass of any one of claims 58-74, wherein the glass comprises + a density at room temperature, dgr, which is greater than or equal to 4.5 and less than or equal to 5.5 and e a refractive index at 587.56 nm, n4, whichever is greater. than or equal to 1.95 and less than or equal to 2.07. 76. Glas volgens een der conclusies 58-75, waarbij het glas omvat e een liquidustemperatuur, Tig, welke kleiner dan of gelijk aan 1100 °C is.A glass according to any one of claims 58-75, wherein the glass comprises a liquidus temperature, Tig, which is less than or equal to 1100°C. 77. Glas volgens conclusie 76, waarbij e de liquidustemperatuur, Tig kleiner dan of gelijk aan 1050 °C is.The glass of claim 76, wherein e is the liquidus temperature, Tig less than or equal to 1050°C. 78. Glas volgens een der conclusies 58-77, waarbij het glas omvat e een Briggse logaritme van liquidusviscositeit, Log{nq [P]), die groter dan of gelijk aan 0.50 is.The glass of any one of claims 58-77, wherein the glass comprises e a Briggs logarithm of liquidus viscosity, Log{nq [P]), which is greater than or equal to 0.50. 79. Glas volgens conclusie 78, waarbij e de Briggse logaritme van liquidusviscositeit, Log{nq, [P]), groter dan of gelijk aanThe glass of claim 78, wherein e is the Briggs logarithm of liquidus viscosity, Log{nq, [P]), greater than or equal to 0.75 is.0.75. 80. Glas volgens een der conclusies 58-79, waarbij, wanneer gekoeld in lucht vanaf 1100 °C naar 500 °C in 2,5 minuten, het glas niet kristalliseert.A glass according to any one of claims 58-79, wherein when cooled in air from 1100°C to 500°C in 2.5 minutes, the glass does not crystallize. 81. Glas volgens een der conclusies 58-80, waarbij, wanneer het een dikte heeft van mm, het glas kan worden gebleekt in minder dan of gelijk aan 96 uur bij een 10 temperatuur van minder dan of gelijk aan 700 °C.81. Glass according to any one of claims 58-80, wherein when it has a thickness of mm, the glass can be bleached in less than or equal to 96 hours at a temperature of less than or equal to 700°C. 82. Werkwijze voor het vervaardigen van een optisch element, de werkwijze omvattende het verwerken van het glas volgens een der conclusies 58-81.82. A method for manufacturing an optical element, the method comprising processing the glass according to any one of claims 58-81. 83. Optisch element omvattende het glas volgens een der conclusies 58-81.83. Optical element comprising the glass of any one of claims 58-81. 84. Glas volgens een der conclusies 1-27, waarbij een totale transmissie, gemeten op een monster van 10 mm dikte, groter dan of gelijk aan 70% is bij een golflengte van 450 nm.A glass according to any one of claims 1 to 27, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm. 85. Glas volgens een der conclusies 30-55, waarbij een totale transmissie, gemeten op een monster van 10 mm dikte, groter dan of gelijk aan 70% is bij een golflengte van 450 nm.A glass according to any one of claims 30-55, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm. 86. Glas volgens een der conclusies 58-81, waarbij een totale transmissie, gemeten op een monster van 10 mm dikte, groter dan of gelijk aan 70% is bij een golflengte van 450 nm.A glass according to any one of claims 58-81, wherein a total transmittance measured on a sample of 10 mm thickness is greater than or equal to 70% at a wavelength of 450 nm.
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