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WO2022122221A1 - Laser device and projector with the laser device - Google Patents

Laser device and projector with the laser device Download PDF

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Publication number
WO2022122221A1
WO2022122221A1 PCT/EP2021/078044 EP2021078044W WO2022122221A1 WO 2022122221 A1 WO2022122221 A1 WO 2022122221A1 EP 2021078044 W EP2021078044 W EP 2021078044W WO 2022122221 A1 WO2022122221 A1 WO 2022122221A1
Authority
WO
WIPO (PCT)
Prior art keywords
laser
plane
laser device
laser diodes
lens
Prior art date
Application number
PCT/EP2021/078044
Other languages
French (fr)
Inventor
Yochay Danziger
Ann RUSSELL
Original Assignee
Ams-Osram International Gmbh
Lumus Ltd.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US17/444,082 external-priority patent/US20220190552A1/en
Application filed by Ams-Osram International Gmbh, Lumus Ltd. filed Critical Ams-Osram International Gmbh
Priority to CN202180088605.9A priority Critical patent/CN116670952A/en
Priority to EP21793892.7A priority patent/EP4260130A1/en
Publication of WO2022122221A1 publication Critical patent/WO2022122221A1/en

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0905Dividing and/or superposing multiple light beams
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0916Adapting the beam shape of a semiconductor light source such as a laser diode or an LED, e.g. for efficiently coupling into optical fibers
    • G02B27/0922Adapting the beam shape of a semiconductor light source such as a laser diode or an LED, e.g. for efficiently coupling into optical fibers the semiconductor light source comprising an array of light emitters
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0938Using specific optical elements
    • G02B27/095Refractive optical elements
    • G02B27/0955Lenses
    • G02B27/0961Lens arrays
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0938Using specific optical elements
    • G02B27/095Refractive optical elements
    • G02B27/0955Lenses
    • G02B27/0966Cylindrical lenses
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0938Using specific optical elements
    • G02B27/095Refractive optical elements
    • G02B27/0972Prisms
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/005Optical components external to the laser cavity, specially adapted therefor, e.g. for homogenisation or merging of the beams or for manipulating laser pulses, e.g. pulse shaping
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/02Structural details or components not essential to laser action
    • H01S5/022Mountings; Housings
    • H01S5/0225Out-coupling of light
    • H01S5/02255Out-coupling of light using beam deflecting elements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/40Arrangement of two or more semiconductor lasers, not provided for in groups H01S5/02 - H01S5/30
    • H01S5/4012Beam combining, e.g. by the use of fibres, gratings, polarisers, prisms
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/40Arrangement of two or more semiconductor lasers, not provided for in groups H01S5/02 - H01S5/30
    • H01S5/4025Array arrangements, e.g. constituted by discrete laser diodes or laser bar
    • H01S5/4087Array arrangements, e.g. constituted by discrete laser diodes or laser bar emitting more than one wavelength
    • H01S5/4093Red, green and blue [RGB] generated directly by laser action or by a combination of laser action with nonlinear frequency conversion
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/02Structural details or components not essential to laser action
    • H01S5/022Mountings; Housings
    • H01S5/0225Out-coupling of light
    • H01S5/02253Out-coupling of light using lenses
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01SDEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
    • H01S5/00Semiconductor lasers
    • H01S5/02Structural details or components not essential to laser action
    • H01S5/022Mountings; Housings
    • H01S5/023Mount members, e.g. sub-mount members
    • H01S5/02315Support members, e.g. bases or carriers

Definitions

  • This disclosure relates to a laser device, and specifically to systems and methods for matching the fast and slow axis field of views for the laser device. Furthermore, the disclosure relates to a projector with the laser device.
  • the laser device is used as light source in the projector, which can be an image projector, for example for near-eye displays, such as augmented reality (AR) and virtual reality (VR) applications .
  • AR augmented reality
  • VR virtual reality
  • a laser device comprises at least one set of at least one laser diode.
  • the set of at least one laser diode can also be denoted as a laser diode set in the following.
  • the at least one laser diode set comprises at least two laser diodes.
  • a laser diode set comprises or is a set of two or more laser diodes that emit light with the same or substantially the same color. Accordingly, a laser diode set can be defined by an emission color, which can be defined by the sum of the light emitted by all laser diodes of the laser diode set.
  • the same or substantially the same color can, for example, mean that a human observer, perceiving the respective light emitted from each of the laser diodes of a laser diode set, has the impression that all laser diodes of the laser diode set emit light with the same or substantially the same color .
  • This can, for instance , mean that the laser diodes of a laser diode set emit light with the same or substantially the same color locus . According to certain embodiments , this can mean that the laser diodes of a laser diode set emit light with the same or similar or substantially similar spectral components .
  • a proj ector comprises the laser device as described before .
  • the features and embodiments described in the following in regard to the laser device equally apply to the proj ector .
  • the laser device comprises at least two laser diode sets , wherein each laser diode set comprises at least one laser diode or, preferably, at least two laser diodes .
  • the laser device can comprise a first laser diode set emitting a first color and a second laser diode set emitting a second color .
  • the first color and the second color preferably di f fer from each other . This can, in particular, mean that the first color and the second color are perceived as di f ferent colors by a human observer .
  • the laser device can comprise a first laser diode set emitting a first color, a second laser diode set emitting a second color and a third laser diode set emitting a third color .
  • the first color and the second color and the third color preferably di f fer from each other .
  • the laser device can comprise a first laser diode set emitting light with a red color, a second laser diode set emitting a green color and a third laser diode set emitting a blue color .
  • the laser device can be a so-called RGB laser device .
  • Each laser diode set can form a so-called color channel of the laser device and can comprise one or more laser diodes .
  • a laser diode set or "a color channel”
  • those features and/or properties apply to at least one laser diode set/color channel and, preferably, to all laser diode sets/color channels of the laser device .
  • the laser diodes are attached to at least one submount .
  • the laser device can comprise at least one submount , wherein at least one or a plurality of laser diodes is/are attached to the submount .
  • the at least one submount can have a mounting surface on which at least one laser diode is mounted .
  • each of the laser diodes of a plurality of laser diodes can be arranged on a respective assigned submount .
  • the at least one submount has a first mounting surface , wherein at least one laser diode is arranged on the first mounting surface , and a second mounting surface opposite to the first mounting surface , wherein at least one further laser diode is arranged on the second mounting surface .
  • the at least one submount can include one or more conductors , for example formed by connecting pads .
  • the laser device can comprise a plurality of such submounts , wherein one or more laser diodes is/are attached to each of the submounts , respectively .
  • the laser device may be constructed using one or more so-called chip-on-submount assemblies ( COSAs ) , in which one or more laser diodes are placed on a submount , and the laser device can include one or more submounts forming an array .
  • COSAs chip-on-submount assemblies
  • the laser diodes can be part of a laser package .
  • the laser device can comprise the laser package or can be formed by the laser package .
  • the laser package can comprise a base , which can be a carrier for the components of the laser package and on which the laser diodes are arranged .
  • the at least one submount is arranged on the base .
  • the base can have a base surface , on which the at least one submount is arranged .
  • the base surface can define a plane that is denoted as a hori zontal plane .
  • the base surface defines a hori zontal plane with respect to the laser device and, in particular, with respect to the laser package .
  • the laser device and, in particular, the laser package can be arranged in any desired orientation with respect to the other components of the proj ector, so that the hori zontal base surface can be arranged in a position that deviates from the hori zontal plane that is defined, for instance , by gravity .
  • the at least one submount is arranged vertically on the base .
  • This can mean that the mounting surface of the submount or the first and second mounting surfaces of the submount as described above is/are not parallel to the base surface but are arranged vertically with respect to the hori zontal base surface .
  • the mounting surface ( s ) of the at least one submount is/are arranged perpendicularly or at least substantially perpendicularly to the base surface .
  • the laser device comprises a plurality of laser diodes as explained before , wherein each laser diode emits , during operation, a light beam having a fast axis and a slow axis and a beam direction .
  • the laser device preferably further comprises one or more optical components configured to modi fy a divergence of the light beams in a fast axis plane and/or in a slow axis plane .
  • the divergence of the light beams is modi fied such that the light beams have a same focal plane in the fast axis plane and in the slow axis plane .
  • the one or more optical components comprise at least one lens or lens array .
  • the one or more optical components comprise at least two lenses .
  • each of the two lenses influences a beam divergence only in one plane chosen from the fast axis plane and the slow axis plane .
  • one of the two lenses influences a beam divergence only in the fast axis plane
  • the other of the two lenses influences a beam divergence only in the slow axis plane .
  • each of the two lenses influences a beam divergence only in the fast axis plane or only in the slow axis plane .
  • An optical component that influences a beam divergence only in one plane chosen from the fast axis plane and the slow axis plane can preferably be a single cylindrical lens or a lens array comprising a plurality of cylindrical microlenses .
  • the lens is assigned to at least two laser diodes or to more than two laser diodes or even to all laser diodes .
  • a lens is assigned to a laser diode i f the light beam emitted by the laser diode is influenced and altered by that lens .
  • the one or more optical components comprise at least one convergent optical component influencing a beam divergence only in the fast axis plane .
  • the one or more optical components comprise a convergent lens assigned to at least two laser diodes or a convergent lens array .
  • the one or more optical components comprise at least one divergent optical component influencing a beam divergence only in the slow axis plane .
  • the one or more optical components comprise a divergent lens assigned to at least two laser diodes or a divergent lens array .
  • the one or more optical components comprises two cylindrical lenses , wherein at least one of the cylindrical lenses is assigned to at least two laser diodes .
  • one of the two cylindrical lenses is arranged downstream of the other of the tow cylindrical lenses .
  • the lens that is assigned to at least two laser diodes is a single cylindrical lens that is assigned to all laser diodes of the laser device .
  • the other of the two cylindrical lenses can also be a single lens or a lens array .
  • the lens array comprises a plurality of convergent cylindrical microlenses arranged next to each other along a direction in the fast axis plane .
  • the lens array comprises a plurality of divergent cylindrical microlenses arranged next to each other along a direction in the slow axis plane .
  • each of the microlenses is assigned to at least one laser diode , wherein each of the microlenses has a cylinder axis that is perpendicular to the fast axis and parallel to the slow axis .
  • the light beam of at least one laser diode is tilted in the fast axis plane with respect to the light beam of another of the laser diodes at the output surface of the lens array and/or with respect to an optical axis of the assigned microlens .
  • At least some of the laser diodes are tilted with respect to each other in the fast axis plane .
  • At least one laser diode is arranged of f-centered in the fast axis plane with respect to the optical axis of the assigned microlens .
  • At least some of the laser diodes are tilted with respect to each other in the slow axis plane .
  • the one or more optical components comprise a divergent optical component influencing only a beam divergence in the fast axis plane .
  • the one or more optical components comprise a cylindrical lens assigned to all laser diodes , for instance a divergent cylindrical lens in combination with the above-mentioned convergent microlenses or a convergent cylindrical lens in combination with the above-mentioned divergent microlenses .
  • one or more of the plurality of laser diodes are tilted at an angle from an axis of symmetry of the one or more optical components .
  • the laser device further comprises a prism having two reflecting sides , onto which the laser diodes emit light , wherein on each side there are several faces that are tilted with respect to each other .
  • the prism is mounted on the base of the laser package .
  • the light beams in the proj ector have an aperture in the fast axis plane and an aperture in the slow axis plane which overlap .
  • FIG . 1 illustrates a proj ector in accordance with various embodiments .
  • FIG . 2 illustrates an example of the placement of laser diodes side-by-side in a laser device in accordance with further embodiments .
  • FIG . 3 illustrates the beam divergence of a laser device in accordance with further embodiments .
  • FIG . 4 illustrates examples of modi fying the fast and slow axes of a six-laser device in accordance with further embodiments .
  • FIG . 5 illustrates a system and method for modi fying the field of view of both the fast and slow axes of a laser device in accordance with further embodiments .
  • FIGS . 6A and 6B illustrate further embodiments for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
  • FIG . 7 illustrates examples of implementing a laser beam tilt in a laser device in accordance with further embodiments .
  • FIG . 8 illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
  • FIG . 9 illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
  • FIG . 10 illustrates a further embodiment for modi fying the field of view of both the fast and slow axes of a laser device in accordance with various implementations .
  • FIG . 11 illustrate laser devices according to further embodiments .
  • the laser device can be used in the proj ector as light source .
  • the proj ector can be a display system in general and, in particular, a near-eye display system that is based on side-by-side scanning laserbeams .
  • the laser device according to the depicted embodiments can comprise three laser diode sets , each having two laser diodes that are formed by edge-emitting diode lasers , respectively . Consequently, by way of example , six laser diodes can be used in a laser device according to the shown embodiments .
  • laser diodes are denoted with the reference numeral 10, to which, for example depending on the depicted view, further information can be added like, for instance, "a”, "b", “R”, "G”, or "B".
  • a plurality of laser diodes can be denoted as “laser diodes 10a” or “laser diodes 10b” in one figure for indicating arrangement properties
  • the same plurality of laser diodes for instance the laser diode (s) 10a shown in the one figure, can be denoted as “laser diode 10R”, “laser diode 10G” and “laser diode 10B” in another figure for indicating color properties of those laser diodes.
  • Figure 1 shows in a view 15 an exemplary embodiment of a projector in a projection application.
  • Laser diodes (indicated by an emission plane EP) of a laser device emit a divergent beam through a window 12 of the laser device, wherein the beam is then reflected by reflector 14.
  • Lenses 16 focus the reflected beam onto two orthogonal scanning mirrors 18a, 18b.
  • a single two-axis scanning mirror can also be used. In such case, a single reflecting small mirror replaces the two scanning mirrors 18a and 18b shown in Figure 1.
  • reflector 14 can be omitted so that the laser diodes can emit the produced light directly onto the lenses 16.
  • the focusing beam angle is modified by field-lens 20 before being focused onto micro-lens-array (MLA) 22.
  • MLA 22 therefore forms a focal plane.
  • a more divergent beam emerging from the MLA 22 is collimated by optics 24 forming a relay-optics before exiting the projector and, for instance, entering a waveguide (not shown) that projects the image onto an observers' eye.
  • optics 24 There is an optical path from the laser diodes , represented by emission plane EP, to the MLA 22 .
  • the limiting apertures in this optical path are the scanning mirrors , and, particularly, the resonant scanning mirror 18a that is the smallest optical component .
  • the superposition of all the beams from the laser diodes should have a minimum beam si ze at the position of at least one of the mirrors 18a, 18b, should illuminate the mirrors 18a, 18b with minimal " spillover" ( causing power loss ) and should focus on the MLA 22 , i . e . , the focal plane .
  • the minimum beam si ze of the light beam emitted by the laser device comprising the light beams of all operated laser diodes , can also be denoted as minimum aperture or, short , as aperture in the following .
  • all features and embodiments explained before and in the following are also applicable in case that the scanning mirrors 18a and 18b are replaced by a single two-axis scanning mirror .
  • Figure 2 illustrates in a side view 25 and in a front view 27 an exemplary embodiment of a laser device comprising a laser package comprising three laser diode sets , wherein each of the laser diode sets comprises two laser diodes .
  • the laser package of the laser device further comprises a base 11 , a prism 28 and a window 12 .
  • the layout shown in Figure 2 is only an example and other architectures are possible for the placement and number of the laser diodes as well as for the components of the laser package .
  • the laser diodes are placed side-by-side in the laser package on the base 11 .
  • the laser diodes form two sets of three RGB lasers , on opposing reflecting sides of the prism 28 on the base 11 .
  • each of the laser diodes emits a light beam onto a reflecting side of the prism that reflects the light beams toward the window 12 .
  • In the side view 25 only two laser diodes 10a, 10b are visible , wherein the additions "a” and "b” denotes the side of the laser diodes with respect to the prism 28 on the base 11 .
  • the three laser diodes 10a on the left-hand side of the prism 28 emit red, green and blue light , respectively, and form one RGB configuration .
  • the three laser diodes 10b on the right-hand side of the prism 28 form another RGB configuration .
  • One of the RGB configurations can be seen in front view 27 .
  • the laser diodes of the shown RGB configuration are denoted as “ 10R” , “ 10G” and " 10B” .
  • Each pair of two laser diodes 10a, 10b emitting the same color forms a laser diode set , also denoted as color channel .
  • each of the depicted laser diodes 10a, 10b represents an RGB set comprising a red-emitting laser diode , a green-emitting laser diode and a blue-emitting laser diode . Consequently, in the following it will also be referred to " laser diode group 10a" and " laser diode group 10b" .
  • each of the laser diodes 10R, 10G, 10B is placed on a submount 26 .
  • the submounts 26 may preferably be placed vertically on the base 11 in the laser package .
  • the base 11 has a base surface , on which the submounts are arranged and which defines a hori zontal plane of the laser package and, thus , of the laser device .
  • the laser diodes are arranged on mounting surfaces of the submounts , wherein the mounting surfaces of the submounts are not parallel to the base surface .
  • the mounting surfaces are perpendicular to the base surface .
  • the light emitted from the laser diodes is reflected perpendicularly by prism 28 and passes through the window 12 already indicated in Figure 1 .
  • the light emitted from the laser diodes and, thus , from the laser package is emitted from the window 12 onto the further optical components described in connection with Figure 1.
  • the arrangement of the six laser diodes (three on each side of prism 28) generates a six spot pattern 32 where every spot must be as sharp as possible to enable a sharp scanned image. Every spot is marked with the reference numeral 200 followed by additions according to the respective color (R, G or B) and the respective RGB set (a or b) .
  • Pattern 36 shows a different pattern that can be generated when two laser diodes are placed on every submount 26.
  • a single RGB set is also possible in which there are only three or four laser diodes (not shown in Figure 2) .
  • the description of the laser device and the projector will focus on the six-laser configuration as shown in views 25 and 27 and in pattern 32.
  • Figure 3 illustrates the beam divergence of a laser device and a modification of the beam divergence in accordance with various implementations.
  • Diagram 39 shows a laser diode 10 that typically transmits a non-symmetric beam diverging fast on one axis F, the so-called fast axis, and diverging slow on another axis S, the so-called slow axis.
  • This asymmetric beam divergence causes substantial power loss since not all the light can be collected by the projector's optics.
  • Diagram 41 shows a method utilizing two cylindrical lenses 44 and 46 for converting the elliptical beam into a circular beam.
  • Diagram 48 shows the same configuration but with different conventions: the solid lines represent the fast axis rays, i.e., the beam in the fast axis plane, while the dashed lines represent observation from the side where the slow axis is visible, i.e., the beam in the slow axis plane.
  • the lenses 44 , 46 are depicted as double headed arrows , only in that view in which they are optically ef fective .
  • lens 44 which ef fects the emitted light only with regard to the fast axis
  • lens 46 which ef fects the emitted light only with regard to the slow axis
  • the same convention of depicting cylindrical lenses is used .
  • Diagram 50 show an alternative configuration where both cylindrical lenses are active on the fast axis plane , but wherein one is a convergent lens 52 and the other one is a divergent lens 54 . This modi fies the fast axis to overlap the slow axis (which is unchanged) in terms of angle and point of origin .
  • Figure 4 illustrates exemplary embodiments for modi fying the fast and slow axes of a laser device , i . e . , for modi fying the light beams emitted by the laser diodes in the fast axis plane and in the slow axis plane , wherein the laser device comprises six laser diodes .
  • Diagram 55 illustrates schematically how the array of six laser diodes shown in Figure 2 , which have their fast axis planes overlapping, can be modi fied based on the configuration shown in diagram 50 in order to have circular beams . It is apparent that the distance between the R, G and B laser diodes should be large enough so that their beams do not overlap when being refracted by second lenses 54 . However, the two laser diode groups 10a and 10b can be very close . Consequently, prism 28 can be narrow .
  • Diagram 56 shows the same six-laser device having both the fast and slow axes modi fied as implemented in the configurations shown in diagrams 41 and 48 of Figure 3 .
  • Using a single cylindrical lens for the fast axis allows the distance between the R, G and B laser diodes to be closer .
  • the presence of lens 46 along the slow axis means that the laser diode groups 10a and 10b must be spaced further apart .
  • the laser diodes ' beams have approximately a Gaussian angular distribution .
  • implementing lenses adj acent to each other will cause leakage of one beam to the lens of a neighboring laser diode , thereby causing crosstalk and degradation of the proj ected image . Consequently, the laser diodes have to be placed further apart when attempting the depicted beam modi fication .
  • Figure 5 illustrates a system and method for modi fying the field of view of both the fast and slow axes of a laser device in accordance with various implementations .
  • Diagram 58 in Figure 5 shows a set of parallel divergent beams 60 being refracted by an array of lenses 62 to generate a set of parallel less-divergent beams 64 .
  • Diagram 65 shows an arrangement that produces the same optical result as the arrangement of diagram 58 , except that the set of divergent beams 66 enter a single lens 68 , the lens 68 having its optical power on the same plane as the distribution of beams 66 emitted by at least two laser diodes and, preferably, of more than two or even all laser diodes of the laser device .
  • the lens 68 is assigned to at least two laser diodes and, preferably, to more than two or even all laser diodes of the laser device . That the lens 68 has its optical power on the same plane as the distribution of two or more beams means that the two or more light beams are arranged next to each other in a direction in a first plane and the curvature of the lens lies in a second plane that is the same plane as the distribution of beams , as can be easily seen in diagram 65 .
  • the first plane i . e .
  • the beams 66 enter the single lens 68 at tilted angles .
  • converging lenses 62 , 68 are shown, a corresponding ef fect can be obtained in case of diverging lenses .
  • Figure 6A illustrates an embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device in a proj ector using optics in accordance with various implementations .
  • Diagram 70 shows the fast axis orientation with correction .
  • the RBG laser diodes 10 of the laser device emit light onto a convergent optical component , which reduces the fast axis divergence .
  • the convergent optical component is formed by a lens array 72 .
  • the lens array 72 comprises convergent cylindrical microlenses arranged next to each other in the plane of the fast axis , wherein the ef fect of the microlenses is equivalent to the function of the lenses 52 in Figure 3 .
  • the cylindrical microlenses each have a cylinder axis that is perpendicular to the fast axis and parallel to the slow axis of the light emitted by the laser diodes .
  • Each of the microlenses is assigned to a laser diode .
  • the lens array 72 can be more compact , thereby allowing a more compact design of the laser device .
  • the lens array 72 comprising the microlenses is a part of the laser device and can be arranged, for instance , below or on the window 12 .
  • the lens array 72 can form the window 12 .
  • the lens array 72 is a part of the proj ector and is arranged downstream of the laser device with respect to the beam direction of the light emitted by the laser device .
  • a further optical component Downstream of the convergent optical component , i . e . , the lens array 72 in the shown embodiment , a further optical component is arranged that is assigned to all laser diodes .
  • the further optical component is formed by a single divergent cylindrical lens 74 in the shown embodiment .
  • the light beams exiting the lens array 72 enter the single divergent cylindrical lens 74 , which has a cylinder axis that is also perpendicular to the fast axis and parallel to the slow axis of the light emitted by the laser diodes .
  • the single divergent cylindrical lens 74 replaces the set of divergent lenses 54 in Figure 3 . In contrast to individual lenses , the single lens 74 can be more compact , thereby allowing a more compact design of the laser device .
  • the lens 74 can also be a part of the laser device and can be arranged, for instance , below or on the window 12 .
  • the lens array 72 and the single lens 74 can be placed on the same side of the window 12 with respect to the beam direction of the light emitted by the laser device , or on di f ferent sides of the window .
  • the lens array 72 can form the window 12 .
  • the lens 74 is a part of the proj ector and is arranged downstream of the laser device with respect to the beam direction of the light emitted by the laser device .
  • Lens 74 can also be a converging lens orientated along the slow axis ( equivalent to diagrams 41 and 48 ) .
  • Lens 16 of the proj ector focuses the laser beams emitted from the single lens 74 onto the MLA plane 22 .
  • the minimum aperture of the set of beams in the fast axis plane is indicated by reference numeral 76 .
  • the scanning mirror 18a may be located at this location when the fast axis orientation is taken into account .
  • diagram 78 shows that in the slow axis orientation, which has the same focus plane formed by the MLA plane 22 as diagram 70 , the location of the minimum aperture 80 of the set of beams in the slow axis plane is not at the same position as the aperture 76 for the fast axis orientation .
  • the scanning mirror 18a may preferably be located at this other location when the slow axis orientation is taken into account .
  • both possibilities i . e . , placing a scanning mirror either at the position of the aperture 76 with respect to the fast axis of the emitted light or at the position of the aperture 80 with respect to the slow axis of the emitted light , are not perfect with respect to the respective other orientation, so that energy will spill over at the scanning mirror .
  • Diagram 82 shows an implementation of the principles described with respect to Figure 5 .
  • the beams of at least one or more of the laser diodes are tilted in the fast axis plane at the output surface of the convergent optical component formed by the lens array 72 .
  • the light beam emitted by at least one of the laser diodes exists the assigned microlens in a direction that is not parallel to the optical axis of that microlens .
  • the light beams of at least one or more of the laser diodes can also be tilted in the fast axis plane at the input surface of the convergent optical element formed by the lens array 72 .
  • the tilting of at least one or more of the light beams is ef fected by tilting some of the laser diodes ( labeled 10RT , 10GT ) with respect to each other in the plane of the fast axis as indicated in diagram 82 .
  • a light beam of a laser diode being tilted at the input or output surface of the convergent optical component can mean that the beam direction of the tilted beam deviates from the beam direction of a light beam emitted by another laser diode at the input or output surface of the convergent optical element .
  • a light beam of a laser diode being tilted can mean that the beam direction of the tilted light beam deviates , at the input or output surface of the lens array, from the optical axis of the assigned microlens of the lens array .
  • a laser diode being tilted can mean that the main emission direction of the light emitted by the tilted laser diode is not parallel to the main emission direction of the light emitted by another laser diode .
  • the main emission direction of a laser diode is the beam direction of the light beam when exiting the laser diode .
  • the focal plane given by the MLA plane 22 is maintained at the same location, but the minimum aperture 84 of the set of beams in the fast axis plane can be shi fted, for instance closer to the laser diodes .
  • the shi ft of the aperture 84 can be optimi zed so that it overlaps with the slow axis aperture 80 in diagram 78 .
  • the superposition of all laser diode beams has an overlapping minimum aperture in the fast axis plane and in the slow axis plane and minimum light power is lost , when a scanning mirror is placed at the position of the overlapping aperture .
  • Figure 6B illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
  • the light beam emitted by laser diode 10 enters the microlens of lens array 72B, forming the convergent optical component , of f- centered in the fast axis plane with respect to the optical axis ( indicated by the dashed line ) of the microlens .
  • this is ef fected by arranging the laser diode 10 of f-centered in the fast axis plane with respect to the optical axis of the microlens lens , thereby generating a beam tilt at the output surface of the lens array 72 and thus behind the lens array 72B .
  • This principle is implemented in the laser device of the proj ector shown in diagram 84 , where all the lasers ( laser diodes 10RS , 10G and 10BS ) are arranged parallel with a predefined spacing, while the microlenses of the lens array 72B have a spacing that is slightly smaller.
  • the beams from lasers 10BS and 10RS are arranged off-centered and, thus, are tilted to be convergent (equivalent to the effect of tilting the laser diodes 10RT and 10BT in diagram 82) , while the light beam from laser diode 10G is not off-centered and, thus, continues without tilt.
  • the same approach can be used for different shifts from the center for the laser diodes 10R and 10B depending on the chromatic dispersion or other aberration effects.
  • the spacing of the microlenses can be wider, if diverging beams are needed.
  • the chromatic aberration can be compensated if the microlenses of lens array 72/72B have different optical powers .
  • Figure 7 illustrates exemplary embodiments of implementing the described light beam tilt in a laser device in accordance with various implementations.
  • Diagram 86 shows a placement of the lasers and submounts 26 at differing relative angles with respect to the central parallel prism 28A.
  • laser diode lOaRT corresponding to laser diode 10RT shown in Figure 6A, is labelled.
  • Diagram 88 shows a parallel placement of the laser diodes while the prism 28B has modified faces reflecting the light from every laser diode at the desired respective correct (tilted or non-tilted) angle.
  • Diagram 90 is a close-up view of prism 28B. As can be seen, the prism 28B has two reflecting sides, onto which the laser diodes emit light, wherein on each side there are several faces 94 that are tilted with respect to each other. The faces 94 of prism 28B are additionally marked according to the assigned laser diodes by color (R, G and B) and side (a and b) .
  • Diagram 96 shows an example with exemplary dimensions for lens array 72 that may be placed adjacent to window 12 or embedded in it. In this preferred configuration of the array, every cylindrical array acts simultaneously on two opposing laser diodes from both sides of the prism.
  • Figure 8 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations.
  • Figure 8 includes a reproduction of diagram 70 of Figure 6A and a new diagram 100 that shows two laser diode groups lOaT, lObT that are tilted with respect to each other in the slow axis plane.
  • the two laser groups lOaT, lObT are tilted so that the aperture 102 in the slow axis plane, i.e., the apertures of laser diode groups 10a and 10b, overlap with the aperture 76 in the fast axis plane (R, G, B in every group) of Figure 6. Therefore, all six lasers' apertures are overlapping.
  • Figure 9 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations.
  • the laser diodes (only the visible laser diodes lOaRW and lObBW are labeled) are tilted on the submount 26 with respect to a horizontal plane defined by a base, for instance base 11 shown in Figure 2, on which the submounts 26 are mounted. In this way the light beams hit the prism 28 (a or b) at specified angles and are reflected at specified angles.
  • the prism's 28 reflecting surfaces include at the top of the prism 28 an angle that deviates from 90°, so that the reflected beams receive the desired angles, whereas the laser diodes can be mounted horizontally, i.e., to emit in a horizontal direction.
  • Figure 10 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations.
  • the lens array 72 is replaced by a single convergent cylindrical lens 112 that covers all lasers beams as described in Fig. 5.
  • Diagram 107 shows a three-dimensional schematic illustration of lenses 112, 74 and 16 and scanning mirror 18A.
  • Diagram 108 shows in the fast axis plane light beams emerging from one of the laser diodes 10B or 10R placed on the outer side through cylindrical lens 112 (preferably serves as laser window 12) and a second divergent lens 74, for instance a divergent lens as shown in Figure 6A, where the laser diodes' tilt compensates for both lenses 112 and 74 according to the principles described in connection with Figure 5.
  • Diagram 110 shows, for reference, the central laser diodes' light beams co-illuminating the same scanning mirror 18A.
  • Diagram 114 shows the slow axis orientation, in which light in this plane is refracted only by conventional lenses 16. The ellipticity of the beam in this example was reduced from 1:3.5 to an acceptable ellipticity of 1:1.5.
  • the configurations shown in Figure 10 include a laser device with a 3-laser package with three laser diodes located in a same plane (shown as a single beam in diagram 114) .
  • another array of lasers such as six as shown in diagram 32 or twelve shown in diagram 36
  • an additional vertical tilt as shown in Figure 9
  • the laser diodes may be oriented perpendicularly so that the slow axis plane is overlapping ( instead of the fast axis ) .
  • the same arrangements of tilt are applicable , with the lenses at orthogonal orientations .
  • Figure 11 shows embodiments for the placement of the lens array/ single lens ( labelled " 72 / 112" ) in the laser package of the laser device .
  • the lens array/ single lens are combined with window 12 .
  • the lens array/ single lens forms the window through which the light emitted by the laser diodes exits the laser package .
  • Frame 117 holds the lens array/ single lens , thereby enabling optical power and sealing of the laser chamber of the laser package .
  • diagram 118 the lens array/ single lens is placed directly on the submounts 26 , thereby enabling a shorter optical path from the laser diodes and enabling a more accurate positioning .
  • Diagrams 120 and 122 show the placement of the lens array/ single lens facing upward or downward, respectively, on top of the submounts . A similar placement is possible where the lens array/ single lens is placed on a mount (not shown) similar to submounts 26 , but placed next to submounts 26 , thereby enabling a stronger support while having the same accuracy since the lens array/ single lens is positioned on the same base 11 as the submounts 26 .

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Abstract

A laser device comprises a plurality of laser diodes, each laser diode emitting a light beam having a fast axis and a slow axis and a beam direction; and one or more optical components configured to modify a divergence of the light beams in a fast axis plane and/or in a slow axis plane such that the light beams have a same focal plane in the fast axis plane and in the slow axis plane.

Description

Description
LASER DEVICE AND PROJECTOR WITH THE LASER DEVICE
This patent application claims the priority of US patent applications US 63/123,518, US 63/160,820, US 63/210,554, and 17/444,082, the disclosure content of which is hereby included by reference.
This disclosure relates to a laser device, and specifically to systems and methods for matching the fast and slow axis field of views for the laser device. Furthermore, the disclosure relates to a projector with the laser device. The laser device is used as light source in the projector, which can be an image projector, for example for near-eye displays, such as augmented reality (AR) and virtual reality (VR) applications .
According to at least one embodiment, a laser device comprises at least one set of at least one laser diode. The set of at least one laser diode can also be denoted as a laser diode set in the following. Preferably, the at least one laser diode set comprises at least two laser diodes. Preferably, a laser diode set comprises or is a set of two or more laser diodes that emit light with the same or substantially the same color. Accordingly, a laser diode set can be defined by an emission color, which can be defined by the sum of the light emitted by all laser diodes of the laser diode set. "The same or substantially the same color" can, for example, mean that a human observer, perceiving the respective light emitted from each of the laser diodes of a laser diode set, has the impression that all laser diodes of the laser diode set emit light with the same or substantially the same color . This can, for instance , mean that the laser diodes of a laser diode set emit light with the same or substantially the same color locus . According to certain embodiments , this can mean that the laser diodes of a laser diode set emit light with the same or similar or substantially similar spectral components .
According to a further embodiment , a proj ector comprises the laser device as described before . The features and embodiments described in the following in regard to the laser device equally apply to the proj ector .
According to a further embodiment , the laser device comprises at least two laser diode sets , wherein each laser diode set comprises at least one laser diode or, preferably, at least two laser diodes . Accordingly, the laser device can comprise a first laser diode set emitting a first color and a second laser diode set emitting a second color . The first color and the second color preferably di f fer from each other . This can, in particular, mean that the first color and the second color are perceived as di f ferent colors by a human observer . Furthermore , the laser device can comprise a first laser diode set emitting a first color, a second laser diode set emitting a second color and a third laser diode set emitting a third color . The first color and the second color and the third color preferably di f fer from each other . For example , the laser device can comprise a first laser diode set emitting light with a red color, a second laser diode set emitting a green color and a third laser diode set emitting a blue color . Accordingly, the laser device can be a so-called RGB laser device . Each laser diode set can form a so-called color channel of the laser device and can comprise one or more laser diodes . When features and/or properties of "a laser diode set" or "a color channel" are described throughout the description, those features and/or properties apply to at least one laser diode set/color channel and, preferably, to all laser diode sets/color channels of the laser device .
According to a further embodiment , the laser diodes are attached to at least one submount . Correspondingly, the laser device can comprise at least one submount , wherein at least one or a plurality of laser diodes is/are attached to the submount . The at least one submount can have a mounting surface on which at least one laser diode is mounted . For example , each of the laser diodes of a plurality of laser diodes can be arranged on a respective assigned submount . Furthermore , it can be possible that the at least one submount has a first mounting surface , wherein at least one laser diode is arranged on the first mounting surface , and a second mounting surface opposite to the first mounting surface , wherein at least one further laser diode is arranged on the second mounting surface . Furthermore , the at least one submount can include one or more conductors , for example formed by connecting pads . Moreover, the laser device can comprise a plurality of such submounts , wherein one or more laser diodes is/are attached to each of the submounts , respectively . Accordingly, the laser device may be constructed using one or more so-called chip-on-submount assemblies ( COSAs ) , in which one or more laser diodes are placed on a submount , and the laser device can include one or more submounts forming an array .
Preferably, the laser diodes can be part of a laser package . The laser device can comprise the laser package or can be formed by the laser package . The laser package can comprise a base , which can be a carrier for the components of the laser package and on which the laser diodes are arranged .
According to a further embodiment , the at least one submount is arranged on the base . The base can have a base surface , on which the at least one submount is arranged . Here and in the following, the base surface can define a plane that is denoted as a hori zontal plane . In other words , the base surface defines a hori zontal plane with respect to the laser device and, in particular, with respect to the laser package . However, in the proj ector the laser device and, in particular, the laser package can be arranged in any desired orientation with respect to the other components of the proj ector, so that the hori zontal base surface can be arranged in a position that deviates from the hori zontal plane that is defined, for instance , by gravity .
According to a further embodiment , the at least one submount is arranged vertically on the base . This can mean that the mounting surface of the submount or the first and second mounting surfaces of the submount as described above is/are not parallel to the base surface but are arranged vertically with respect to the hori zontal base surface . In other words , the mounting surface ( s ) of the at least one submount is/are arranged perpendicularly or at least substantially perpendicularly to the base surface . Consequently, in the vertical arrangement of a submount on the base surface of the base a laser diode on the mounting surface can be positioned next to the submount along a direction that is parallel or at least substantially parallel to the base surface and, thus , parallel or at least substantially parallel to the hori zontal plane of the laser device . According to a further embodiment , the laser device comprises a plurality of laser diodes as explained before , wherein each laser diode emits , during operation, a light beam having a fast axis and a slow axis and a beam direction . The laser device preferably further comprises one or more optical components configured to modi fy a divergence of the light beams in a fast axis plane and/or in a slow axis plane . Particularly preferably, the divergence of the light beams is modi fied such that the light beams have a same focal plane in the fast axis plane and in the slow axis plane .
According to a further embodiment , the one or more optical components comprise at least one lens or lens array . Preferably, the one or more optical components comprise at least two lenses . Particularly preferably, each of the two lenses influences a beam divergence only in one plane chosen from the fast axis plane and the slow axis plane . For instance , one of the two lenses influences a beam divergence only in the fast axis plane , whereas the other of the two lenses influences a beam divergence only in the slow axis plane . Alternatively, each of the two lenses influences a beam divergence only in the fast axis plane or only in the slow axis plane . An optical component that influences a beam divergence only in one plane chosen from the fast axis plane and the slow axis plane can preferably be a single cylindrical lens or a lens array comprising a plurality of cylindrical microlenses . Particularly preferably, in case an optical component is formed by a single lens , the lens is assigned to at least two laser diodes or to more than two laser diodes or even to all laser diodes . Here and in the following, a lens is assigned to a laser diode i f the light beam emitted by the laser diode is influenced and altered by that lens .
According to a further embodiment , the one or more optical components comprise at least one convergent optical component influencing a beam divergence only in the fast axis plane .
According to a further embodiment , the one or more optical components comprise a convergent lens assigned to at least two laser diodes or a convergent lens array .
According to a further embodiment , the one or more optical components comprise at least one divergent optical component influencing a beam divergence only in the slow axis plane .
According to a further embodiment , the one or more optical components comprise a divergent lens assigned to at least two laser diodes or a divergent lens array .
According to a further embodiment , the one or more optical components comprises two cylindrical lenses , wherein at least one of the cylindrical lenses is assigned to at least two laser diodes . In particular, one of the two cylindrical lenses is arranged downstream of the other of the tow cylindrical lenses . In preferred embodiments the lens that is assigned to at least two laser diodes is a single cylindrical lens that is assigned to all laser diodes of the laser device . The other of the two cylindrical lenses can also be a single lens or a lens array .
According to a further embodiment , the lens array comprises a plurality of convergent cylindrical microlenses arranged next to each other along a direction in the fast axis plane . According to a further embodiment , the lens array comprises a plurality of divergent cylindrical microlenses arranged next to each other along a direction in the slow axis plane .
According to a further embodiment , each of the microlenses is assigned to at least one laser diode , wherein each of the microlenses has a cylinder axis that is perpendicular to the fast axis and parallel to the slow axis .
According to a further embodiment , at an output surface of the lens array, the light beam of at least one laser diode is tilted in the fast axis plane with respect to the light beam of another of the laser diodes at the output surface of the lens array and/or with respect to an optical axis of the assigned microlens .
According to a further embodiment , at least some of the laser diodes are tilted with respect to each other in the fast axis plane .
According to a further embodiment , at least one laser diode is arranged of f-centered in the fast axis plane with respect to the optical axis of the assigned microlens .
According to a further embodiment , at least some of the laser diodes are tilted with respect to each other in the slow axis plane .
According to a further embodiment , the one or more optical components comprise a divergent optical component influencing only a beam divergence in the fast axis plane . According to a further embodiment , the one or more optical components comprise a cylindrical lens assigned to all laser diodes , for instance a divergent cylindrical lens in combination with the above-mentioned convergent microlenses or a convergent cylindrical lens in combination with the above-mentioned divergent microlenses .
According to a further embodiment , one or more of the plurality of laser diodes are tilted at an angle from an axis of symmetry of the one or more optical components .
According to a further embodiment , the laser device further comprises a prism having two reflecting sides , onto which the laser diodes emit light , wherein on each side there are several faces that are tilted with respect to each other . Preferably, the prism is mounted on the base of the laser package .
According to a further embodiment , in the proj ector the light beams have an aperture in the fast axis plane and an aperture in the slow axis plane which overlap .
Further features , advantages and expediencies of the laser device will become apparent from the following description of exemplary embodiments and features in conj unction with the figures . The embodiments shown in the figures and, in particular, the respective described features are not limited to the respective combinations of features shown in the figures . Rather, the shown embodiments as well as single features can be combined with one another, even i f not all combinations are explicitly described . FIG . 1 illustrates a proj ector in accordance with various embodiments .
FIG . 2 illustrates an example of the placement of laser diodes side-by-side in a laser device in accordance with further embodiments .
FIG . 3 illustrates the beam divergence of a laser device in accordance with further embodiments .
FIG . 4 illustrates examples of modi fying the fast and slow axes of a six-laser device in accordance with further embodiments .
FIG . 5 illustrates a system and method for modi fying the field of view of both the fast and slow axes of a laser device in accordance with further embodiments .
FIGS . 6A and 6B illustrate further embodiments for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
FIG . 7 illustrates examples of implementing a laser beam tilt in a laser device in accordance with further embodiments .
FIG . 8 illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations . FIG . 9 illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations .
FIG . 10 illustrates a further embodiment for modi fying the field of view of both the fast and slow axes of a laser device in accordance with various implementations .
FIG . 11 illustrate laser devices according to further embodiments .
These and other features of the present implementations will be understood better by reading the following detailed description, taken together with the figures herein described . The accompanying drawings are not intended to be drawn to scale . For purposes of clarity, not every component may be labeled in every drawing .
In the following, various embodiments of a laser device and of a proj ector are described, wherein the laser device can be used in the proj ector as light source . The proj ector can be a display system in general and, in particular, a near-eye display system that is based on side-by-side scanning laserbeams . By way of example , even i f not always explicitly shown, the laser device according to the depicted embodiments can comprise three laser diode sets , each having two laser diodes that are formed by edge-emitting diode lasers , respectively . Consequently, by way of example , six laser diodes can be used in a laser device according to the shown embodiments . However, other numbers of laser diode sets and laser diodes per laser diode set are also possible . In the following, laser diodes are denoted with the reference numeral 10, to which, for example depending on the depicted view, further information can be added like, for instance, "a", "b", "R", "G", or "B". In this regard, for instance a plurality of laser diodes can be denoted as "laser diodes 10a" or "laser diodes 10b" in one figure for indicating arrangement properties, while the same plurality of laser diodes, for instance the laser diode (s) 10a shown in the one figure, can be denoted as "laser diode 10R", "laser diode 10G" and "laser diode 10B" in another figure for indicating color properties of those laser diodes.
Figure 1 shows in a view 15 an exemplary embodiment of a projector in a projection application. Laser diodes (indicated by an emission plane EP) of a laser device emit a divergent beam through a window 12 of the laser device, wherein the beam is then reflected by reflector 14. Lenses 16 focus the reflected beam onto two orthogonal scanning mirrors 18a, 18b. Alternatively, here and in the following embodiments a single two-axis scanning mirror can also be used. In such case, a single reflecting small mirror replaces the two scanning mirrors 18a and 18b shown in Figure 1. Moreover, reflector 14 can be omitted so that the laser diodes can emit the produced light directly onto the lenses 16. The focusing beam angle is modified by field-lens 20 before being focused onto micro-lens-array (MLA) 22. The MLA 22 therefore forms a focal plane. A more divergent beam emerging from the MLA 22 is collimated by optics 24 forming a relay-optics before exiting the projector and, for instance, entering a waveguide (not shown) that projects the image onto an observers' eye. There is an optical path from the laser diodes , represented by emission plane EP, to the MLA 22 . The limiting apertures in this optical path are the scanning mirrors , and, particularly, the resonant scanning mirror 18a that is the smallest optical component . Therefore , the superposition of all the beams from the laser diodes should have a minimum beam si ze at the position of at least one of the mirrors 18a, 18b, should illuminate the mirrors 18a, 18b with minimal " spillover" ( causing power loss ) and should focus on the MLA 22 , i . e . , the focal plane . The minimum beam si ze of the light beam emitted by the laser device , comprising the light beams of all operated laser diodes , can also be denoted as minimum aperture or, short , as aperture in the following . As mentioned above , all features and embodiments explained before and in the following are also applicable in case that the scanning mirrors 18a and 18b are replaced by a single two-axis scanning mirror .
Figure 2 illustrates in a side view 25 and in a front view 27 an exemplary embodiment of a laser device comprising a laser package comprising three laser diode sets , wherein each of the laser diode sets comprises two laser diodes . By way of example , the laser package of the laser device further comprises a base 11 , a prism 28 and a window 12 . The layout shown in Figure 2 is only an example and other architectures are possible for the placement and number of the laser diodes as well as for the components of the laser package .
The laser diodes are placed side-by-side in the laser package on the base 11 . The laser diodes form two sets of three RGB lasers , on opposing reflecting sides of the prism 28 on the base 11 . When operated, each of the laser diodes emits a light beam onto a reflecting side of the prism that reflects the light beams toward the window 12 . In the side view 25 only two laser diodes 10a, 10b are visible , wherein the additions "a" and "b" denotes the side of the laser diodes with respect to the prism 28 on the base 11 . The three laser diodes 10a on the left-hand side of the prism 28 emit red, green and blue light , respectively, and form one RGB configuration . The three laser diodes 10b on the right-hand side of the prism 28 form another RGB configuration . One of the RGB configurations can be seen in front view 27 . In particular, the laser diodes of the shown RGB configuration are denoted as " 10R" , " 10G" and " 10B" . Each pair of two laser diodes 10a, 10b emitting the same color forms a laser diode set , also denoted as color channel . Furthermore , each of the depicted laser diodes 10a, 10b represents an RGB set comprising a red-emitting laser diode , a green-emitting laser diode and a blue-emitting laser diode . Consequently, in the following it will also be referred to " laser diode group 10a" and " laser diode group 10b" .
As can be seen in the front view 27 , each of the laser diodes 10R, 10G, 10B is placed on a submount 26 . The submounts 26 may preferably be placed vertically on the base 11 in the laser package . As explained above , this means that the base 11 has a base surface , on which the submounts are arranged and which defines a hori zontal plane of the laser package and, thus , of the laser device . The laser diodes are arranged on mounting surfaces of the submounts , wherein the mounting surfaces of the submounts are not parallel to the base surface . Preferably, the mounting surfaces are perpendicular to the base surface . The light emitted from the laser diodes is reflected perpendicularly by prism 28 and passes through the window 12 already indicated in Figure 1 . In other words , the light emitted from the laser diodes and, thus , from the laser package is emitted from the window 12 onto the further optical components described in connection with Figure 1.
The arrangement of the six laser diodes (three on each side of prism 28) generates a six spot pattern 32 where every spot must be as sharp as possible to enable a sharp scanned image. Every spot is marked with the reference numeral 200 followed by additions according to the respective color (R, G or B) and the respective RGB set (a or b) . Pattern 36 shows a different pattern that can be generated when two laser diodes are placed on every submount 26. A single RGB set is also possible in which there are only three or four laser diodes (not shown in Figure 2) . In the following, for the sake of clarity, the description of the laser device and the projector will focus on the six-laser configuration as shown in views 25 and 27 and in pattern 32.
Figure 3 illustrates the beam divergence of a laser device and a modification of the beam divergence in accordance with various implementations. Diagram 39 shows a laser diode 10 that typically transmits a non-symmetric beam diverging fast on one axis F, the so-called fast axis, and diverging slow on another axis S, the so-called slow axis. This asymmetric beam divergence causes substantial power loss since not all the light can be collected by the projector's optics.
Diagram 41 shows a method utilizing two cylindrical lenses 44 and 46 for converting the elliptical beam into a circular beam. Diagram 48 shows the same configuration but with different conventions: the solid lines represent the fast axis rays, i.e., the beam in the fast axis plane, while the dashed lines represent observation from the side where the slow axis is visible, i.e., the beam in the slow axis plane. The lenses 44 , 46 are depicted as double headed arrows , only in that view in which they are optically ef fective . Thus , lens 44 , which ef fects the emitted light only with regard to the fast axis , is only shown in the fast axis plane view, whereas lens 46 , which ef fects the emitted light only with regard to the slow axis , is only shown in the slow axis plane view . In the following figures the same convention of depicting cylindrical lenses is used .
Diagram 50 show an alternative configuration where both cylindrical lenses are active on the fast axis plane , but wherein one is a convergent lens 52 and the other one is a divergent lens 54 . This modi fies the fast axis to overlap the slow axis (which is unchanged) in terms of angle and point of origin .
Heron, for clarity, most configurations depicted are equivalent to the configuration according to diagram 50 where only the fast axis is manipulated . However, similar optical arrangements may include the manipulation of both axes as depicted in diagrams 41 and 48 , wherein the axis of the second lens is parallel to the slow axis .
Figure 4 illustrates exemplary embodiments for modi fying the fast and slow axes of a laser device , i . e . , for modi fying the light beams emitted by the laser diodes in the fast axis plane and in the slow axis plane , wherein the laser device comprises six laser diodes . Diagram 55 illustrates schematically how the array of six laser diodes shown in Figure 2 , which have their fast axis planes overlapping, can be modi fied based on the configuration shown in diagram 50 in order to have circular beams . It is apparent that the distance between the R, G and B laser diodes should be large enough so that their beams do not overlap when being refracted by second lenses 54 . However, the two laser diode groups 10a and 10b can be very close . Consequently, prism 28 can be narrow .
Diagram 56 shows the same six-laser device having both the fast and slow axes modi fied as implemented in the configurations shown in diagrams 41 and 48 of Figure 3 . Using a single cylindrical lens for the fast axis allows the distance between the R, G and B laser diodes to be closer . However, the presence of lens 46 along the slow axis means that the laser diode groups 10a and 10b must be spaced further apart . The laser diodes ' beams have approximately a Gaussian angular distribution . Thus , implementing lenses adj acent to each other will cause leakage of one beam to the lens of a neighboring laser diode , thereby causing crosstalk and degradation of the proj ected image . Consequently, the laser diodes have to be placed further apart when attempting the depicted beam modi fication .
Figure 5 illustrates a system and method for modi fying the field of view of both the fast and slow axes of a laser device in accordance with various implementations . Diagram 58 in Figure 5 shows a set of parallel divergent beams 60 being refracted by an array of lenses 62 to generate a set of parallel less-divergent beams 64 . Diagram 65 shows an arrangement that produces the same optical result as the arrangement of diagram 58 , except that the set of divergent beams 66 enter a single lens 68 , the lens 68 having its optical power on the same plane as the distribution of beams 66 emitted by at least two laser diodes and, preferably, of more than two or even all laser diodes of the laser device . In other words , the lens 68 is assigned to at least two laser diodes and, preferably, to more than two or even all laser diodes of the laser device . That the lens 68 has its optical power on the same plane as the distribution of two or more beams means that the two or more light beams are arranged next to each other in a direction in a first plane and the curvature of the lens lies in a second plane that is the same plane as the distribution of beams , as can be easily seen in diagram 65 . In case of a cylindrical lens 68 having a cylinder axis , the first plane , i . e . , the plane in which the direction lies along which the beams are arranged next to each other, is perpendicular to the cylinder axis of the cylindrical lens 68 .
In order to have the same set of parallel less-divergent beams 64 exit from the single lens 68 as from the array of lenses 62 shown in diagram 58 , the beams 66 enter the single lens 68 at tilted angles . Although in Figure 5 converging lenses 62 , 68 are shown, a corresponding ef fect can be obtained in case of diverging lenses .
Figure 6A illustrates an embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device in a proj ector using optics in accordance with various implementations . Diagram 70 shows the fast axis orientation with correction . The RBG laser diodes 10 of the laser device emit light onto a convergent optical component , which reduces the fast axis divergence . In the shown embodiment , the convergent optical component is formed by a lens array 72 . The lens array 72 comprises convergent cylindrical microlenses arranged next to each other in the plane of the fast axis , wherein the ef fect of the microlenses is equivalent to the function of the lenses 52 in Figure 3 . Consequently, the cylindrical microlenses each have a cylinder axis that is perpendicular to the fast axis and parallel to the slow axis of the light emitted by the laser diodes . Each of the microlenses is assigned to a laser diode . In contrast to individual lenses , the lens array 72 can be more compact , thereby allowing a more compact design of the laser device .
Preferably, the lens array 72 comprising the microlenses is a part of the laser device and can be arranged, for instance , below or on the window 12 . Alternatively, the lens array 72 can form the window 12 . It can also be possible that the lens array 72 is a part of the proj ector and is arranged downstream of the laser device with respect to the beam direction of the light emitted by the laser device .
Downstream of the convergent optical component , i . e . , the lens array 72 in the shown embodiment , a further optical component is arranged that is assigned to all laser diodes . The further optical component is formed by a single divergent cylindrical lens 74 in the shown embodiment . The light beams exiting the lens array 72 enter the single divergent cylindrical lens 74 , which has a cylinder axis that is also perpendicular to the fast axis and parallel to the slow axis of the light emitted by the laser diodes . The single divergent cylindrical lens 74 replaces the set of divergent lenses 54 in Figure 3 . In contrast to individual lenses , the single lens 74 can be more compact , thereby allowing a more compact design of the laser device .
Preferably, the lens 74 can also be a part of the laser device and can be arranged, for instance , below or on the window 12 . The lens array 72 and the single lens 74 can be placed on the same side of the window 12 with respect to the beam direction of the light emitted by the laser device , or on di f ferent sides of the window . Alternatively, the lens array 72 can form the window 12 . It can also be possible that the lens 74 is a part of the proj ector and is arranged downstream of the laser device with respect to the beam direction of the light emitted by the laser device . Lens 74 can also be a converging lens orientated along the slow axis ( equivalent to diagrams 41 and 48 ) .
Lens 16 of the proj ector focuses the laser beams emitted from the single lens 74 onto the MLA plane 22 . The minimum aperture of the set of beams in the fast axis plane is indicated by reference numeral 76 . Preferably, the scanning mirror 18a may be located at this location when the fast axis orientation is taken into account . However, diagram 78 shows that in the slow axis orientation, which has the same focus plane formed by the MLA plane 22 as diagram 70 , the location of the minimum aperture 80 of the set of beams in the slow axis plane is not at the same position as the aperture 76 for the fast axis orientation . Thus , the scanning mirror 18a may preferably be located at this other location when the slow axis orientation is taken into account . Consequently, since the apertures of the six lasers in the slow axis orientation and in the fast axis orientation do not overlap, both possibilities , i . e . , placing a scanning mirror either at the position of the aperture 76 with respect to the fast axis of the emitted light or at the position of the aperture 80 with respect to the slow axis of the emitted light , are not perfect with respect to the respective other orientation, so that energy will spill over at the scanning mirror .
Diagram 82 shows an implementation of the principles described with respect to Figure 5 . The beams of at least one or more of the laser diodes are tilted in the fast axis plane at the output surface of the convergent optical component formed by the lens array 72 . This means that the light beams emitted by at least one of the laser diodes exits the convergent optical component in a direction that is not parallel to the optical axis of the convergent optical element . In case of the shown lens array 72 the light beam emitted by at least one of the laser diodes exists the assigned microlens in a direction that is not parallel to the optical axis of that microlens . In particular, the light beams of at least one or more of the laser diodes can also be tilted in the fast axis plane at the input surface of the convergent optical element formed by the lens array 72 . In the shown embodiment , the tilting of at least one or more of the light beams is ef fected by tilting some of the laser diodes ( labeled 10RT , 10GT ) with respect to each other in the plane of the fast axis as indicated in diagram 82 .
A light beam of a laser diode being tilted at the input or output surface of the convergent optical component can mean that the beam direction of the tilted beam deviates from the beam direction of a light beam emitted by another laser diode at the input or output surface of the convergent optical element . In particular, in case of a lens array as shown in Figure 6A, a light beam of a laser diode being tilted can mean that the beam direction of the tilted light beam deviates , at the input or output surface of the lens array, from the optical axis of the assigned microlens of the lens array . A laser diode being tilted can mean that the main emission direction of the light emitted by the tilted laser diode is not parallel to the main emission direction of the light emitted by another laser diode . The main emission direction of a laser diode is the beam direction of the light beam when exiting the laser diode .
As consequence of tilting some of the light beams , for instance by tilting some of the laser diodes , the focal plane given by the MLA plane 22 is maintained at the same location, but the minimum aperture 84 of the set of beams in the fast axis plane can be shi fted, for instance closer to the laser diodes . By adj usting the tilting angle of the tilted laser diodes , the shi ft of the aperture 84 can be optimi zed so that it overlaps with the slow axis aperture 80 in diagram 78 . Now, the superposition of all laser diode beams has an overlapping minimum aperture in the fast axis plane and in the slow axis plane and minimum light power is lost , when a scanning mirror is placed at the position of the overlapping aperture .
Figure 6B illustrates a further embodiment for the correction of di f fering divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations . As shown in diagram 83 , the light beam emitted by laser diode 10 enters the microlens of lens array 72B, forming the convergent optical component , of f- centered in the fast axis plane with respect to the optical axis ( indicated by the dashed line ) of the microlens . In the shown embodiment , this is ef fected by arranging the laser diode 10 of f-centered in the fast axis plane with respect to the optical axis of the microlens lens , thereby generating a beam tilt at the output surface of the lens array 72 and thus behind the lens array 72B . This principle is implemented in the laser device of the proj ector shown in diagram 84 , where all the lasers ( laser diodes 10RS , 10G and 10BS ) are arranged parallel with a predefined spacing, while the microlenses of the lens array 72B have a spacing that is slightly smaller. Consequently, the beams from lasers 10BS and 10RS are arranged off-centered and, thus, are tilted to be convergent (equivalent to the effect of tilting the laser diodes 10RT and 10BT in diagram 82) , while the light beam from laser diode 10G is not off-centered and, thus, continues without tilt. The same approach can be used for different shifts from the center for the laser diodes 10R and 10B depending on the chromatic dispersion or other aberration effects. Also, the spacing of the microlenses can be wider, if diverging beams are needed. The chromatic aberration can be compensated if the microlenses of lens array 72/72B have different optical powers .
Figure 7 illustrates exemplary embodiments of implementing the described light beam tilt in a laser device in accordance with various implementations. Diagram 86 shows a placement of the lasers and submounts 26 at differing relative angles with respect to the central parallel prism 28A. For the sake of clarity, only laser diode lOaRT, corresponding to laser diode 10RT shown in Figure 6A, is labelled.
Diagram 88 shows a parallel placement of the laser diodes while the prism 28B has modified faces reflecting the light from every laser diode at the desired respective correct (tilted or non-tilted) angle. Diagram 90 is a close-up view of prism 28B. As can be seen, the prism 28B has two reflecting sides, onto which the laser diodes emit light, wherein on each side there are several faces 94 that are tilted with respect to each other. The faces 94 of prism 28B are additionally marked according to the assigned laser diodes by color (R, G and B) and side (a and b) . Diagram 96 shows an example with exemplary dimensions for lens array 72 that may be placed adjacent to window 12 or embedded in it. In this preferred configuration of the array, every cylindrical array acts simultaneously on two opposing laser diodes from both sides of the prism.
Figure 8 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations. Figure 8 includes a reproduction of diagram 70 of Figure 6A and a new diagram 100 that shows two laser diode groups lOaT, lObT that are tilted with respect to each other in the slow axis plane. The two laser groups lOaT, lObT are tilted so that the aperture 102 in the slow axis plane, i.e., the apertures of laser diode groups 10a and 10b, overlap with the aperture 76 in the fast axis plane (R, G, B in every group) of Figure 6. Therefore, all six lasers' apertures are overlapping.
Figure 9 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations. In diagram 104, the laser diodes (only the visible laser diodes lOaRW and lObBW are labeled) are tilted on the submount 26 with respect to a horizontal plane defined by a base, for instance base 11 shown in Figure 2, on which the submounts 26 are mounted. In this way the light beams hit the prism 28 (a or b) at specified angles and are reflected at specified angles. Alternatively, as shown in diagram 106, also a configuration is possible where the prism's 28 reflecting surfaces include at the top of the prism 28 an angle that deviates from 90°, so that the reflected beams receive the desired angles, whereas the laser diodes can be mounted horizontally, i.e., to emit in a horizontal direction.
Figure 10 illustrates a further embodiment for the correction of differing divergences along the fast axis and the slow axis of a laser device using optics in accordance with various implementations. In comparison to the embodiments described before, the lens array 72 is replaced by a single convergent cylindrical lens 112 that covers all lasers beams as described in Fig. 5. Diagram 107 shows a three-dimensional schematic illustration of lenses 112, 74 and 16 and scanning mirror 18A. Diagram 108 shows in the fast axis plane light beams emerging from one of the laser diodes 10B or 10R placed on the outer side through cylindrical lens 112 (preferably serves as laser window 12) and a second divergent lens 74, for instance a divergent lens as shown in Figure 6A, where the laser diodes' tilt compensates for both lenses 112 and 74 according to the principles described in connection with Figure 5. Diagram 110 shows, for reference, the central laser diodes' light beams co-illuminating the same scanning mirror 18A. Diagram 114 shows the slow axis orientation, in which light in this plane is refracted only by conventional lenses 16. The ellipticity of the beam in this example was reduced from 1:3.5 to an acceptable ellipticity of 1:1.5.
The configurations shown in Figure 10 include a laser device with a 3-laser package with three laser diodes located in a same plane (shown as a single beam in diagram 114) . However, another array of lasers (such as six as shown in diagram 32 or twelve shown in diagram 36) may also be implemented, in which an additional vertical tilt (as shown in Figure 9) may be implemented if needed. In some implementations , the laser diodes may be oriented perpendicularly so that the slow axis plane is overlapping ( instead of the fast axis ) . In this case , the same arrangements of tilt are applicable , with the lenses at orthogonal orientations .
The distance and the lateral placement of the lens arrays 72 , 72B or of single lens 112 is of great importance since misalignment can cause substantial defocusing or undesired beam shi fts . Figure 11 shows embodiments for the placement of the lens array/ single lens ( labelled " 72 / 112" ) in the laser package of the laser device . In diagram 116 the lens array/ single lens are combined with window 12 . In other words , the lens array/ single lens forms the window through which the light emitted by the laser diodes exits the laser package . Frame 117 holds the lens array/ single lens , thereby enabling optical power and sealing of the laser chamber of the laser package . In diagram 118 the lens array/ single lens is placed directly on the submounts 26 , thereby enabling a shorter optical path from the laser diodes and enabling a more accurate positioning . Diagrams 120 and 122 show the placement of the lens array/ single lens facing upward or downward, respectively, on top of the submounts . A similar placement is possible where the lens array/ single lens is placed on a mount (not shown) similar to submounts 26 , but placed next to submounts 26 , thereby enabling a stronger support while having the same accuracy since the lens array/ single lens is positioned on the same base 11 as the submounts 26 .
Unless otherwise stated, use of the word " substantially" may be construed to include a precise relationship, condition, arrangement , orientation, and/or other characteristic, and deviations thereof as understood by one of ordinary skill in the art , to the extent that such deviations do not materially af fect the disclosed methods and systems .
The features and embodiments described in connection with the figures can also be combined with one another according to further embodiments , even i f not all such combinations are explicitly described . Furthermore , the embodiments described in connection with the figures can have additional and/or alternative features according to the description in the general part .
The foregoing description of the implementations of the present disclosure has been presented for the purposes of illustration and description . It is not intended to be exhaustive or to limit the present disclosure to the precise form disclosed . Many modi fications and variations are possible in light of this disclosure . It is intended that the scope of the present disclosure be limited not by this detailed description, but rather by the claims appended hereto .
Reference numerals
10 diode laser
10R, 10G, 10B laser diode
10RT, 10GT laser diode
10RS, 10G, 10BS laser diode lOaRT, lOaRW, lObBW laser diode
10a, 10b, lOaT, lObT laser diode group
11 base
12 window
14 reflector
15 view
16 lens
18a, 18b scanning mirror
20 field-lens
22 micro-lens-array (MLA)
24 optics
26 submount
25 side view
27 front view
26 submount
28, 28A prism
32, 36 spot pattern
200aR, 200bB, 200bG, 200bR, 200aG, 200aB spot
39, 41 diagram
44, 46 cylindrical lens
48, 50 diagram
52, 54 lens
55, 58 diagram
60, 64, 66 beam
62, 68, 74 lens
65, 70 diagram
72, 72B lens array
76, 80, 84, 102 aperture
78, 82, 83 diagram
86, 88, 90 diagram
94 face 96, 104, 106 diagram
112 lens
107, 108, 110, 114, 116 diagram
117 frame 118, 120, 122 diagram
F fast axis
S slow axis

Claims

- 29 -
Claims
1. A laser device, comprising: a laser package comprising a plurality of laser diodes (10) , each laser diode emitting a light beam having a fast axis (F) and a slow axis (S) and a beam direction; and one or more optical components configured to modify a divergence of the light beams in a fast axis plane and/or in a slow axis plane such that the light beams have a same focal plane in the fast axis plane and in the slow axis plane, wherein the laser diodes are mounted on one or more submounts (26) , wherein the one or more submounts are arranged vertically on a base (11) , wherein the one or more optical components comprise two cylindrical lenses or at least one cylindrical lens and a lens array, wherein at least one cylindrical lens of the one or more optical components is assigned to at least two laser diodes .
2. The laser device of claim 1, wherein at least one optical component (72, 112) is directly placed on the one or more submounts.
3. The laser device of claim 2, wherein the one or more submounts are arranged, along the vertical direction, between the base and the at least one optical component that is directly placed on the one or more submounts. 30
4 . The laser device of any of the preceding claims , wherein at least one optical component forms a window ( 12 ) of the laser package .
5 . The laser device of any of the preceding claims , wherein the at least one cylindrical lens that is assigned to at least two laser diodes is a single cylindrical lens that is assigned to all laser diodes .
6 . The laser device of any of the preceding claims , wherein the one or more optical components comprise a convergent optical component influencing only a beam divergence in the fast axis plane .
7 . The laser device of any of the preceding claims , wherein the lens array comprises a plurality of convergent cylindrical microlenses arranged next to each other along a direction in the fast axis plane .
8 . The laser device of claim 7 , wherein each of the microlenses is assigned to at least one laser diode , wherein each of the microlenses has a cylinder axis that is perpendicular to the fast axis and parallel to the slow axis .
9 . The laser device of any of the preceding claims , wherein, at an output surface of the lens array, the light beam of at least one laser diode is tilted in the fast axis plane with respect to the light beam of another of the laser diodes at the output surface of the lens array and/or with respect to an optical axis of the assigned microlens . he laser device of claim 9 , wherein at least some of the laser diodes are tilted with respect to each other in the fast axis plane . he laser device of claim 9 or 10 , wherein at least one laser diode is arranged of f-centered in the fast axis plane with respect to the optical axis of the assigned microlens . he laser device of any of the preceding claims , wherein the lens array comprises a plurality of microlenses that have di f ferent optical powers . he laser device of any of the preceding claims , wherein at least some of the laser diodes are tilted with respect to each other in the slow axis plane . he laser device of any of the preceding claims , wherein the one or more optical components comprise a divergent optical component influencing only a beam divergence in the slow axis plane . he laser device of any of the preceding claims , wherein the one or more optical components comprise a divergent cylindrical lens assigned to all laser diodes . he laser device of any of the preceding claims , wherein one or more of the plurality of laser diodes are tilted at an angle from an axis of symmetry of the one or more optical components .
17 . The laser device of any of the preceding claims , further comprising a prism having two reflecting sides , onto which the laser diodes emit light , wherein on each side there are several faces that are tilted with respect to each other .
18 . A proj ector comprising the laser device of any of the preceding claims , wherein for the light beams an aperture in the fast axis plane and an aperture in the slow axis plane overlap .
19 . A laser device , comprising : a laser package comprising a plurality of laser diodes ( 10 ) , each laser diode emitting a light beam having a fast axis ( F) and a slow axis ( S ) and a beam direction; and one or more optical components configured to modi fy a divergence of the light beams in a fast axis plane and/or in a slow axis plane such that the light beams have a same focal plane in the fast axis plane and in the slow axis plane , wherein at least two laser diodes emit light beams that are arranged next to each other in a direction in a first plane , wherein the one or more optical components comprises a lens that is assigned to the at least two laser diodes and that has a curvature that lies is a second plane that is the same plane as the first plane .
20 . The laser device of claim 19 , wherein the lens is a cylindrical lens having a cylinder axis , wherein the cylinder axis is perpendicular to the first plane .
PCT/EP2021/078044 2020-12-10 2021-10-11 Laser device and projector with the laser device WO2022122221A1 (en)

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US202163210554P 2021-06-15 2021-06-15
US63/210,554 2021-06-15
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Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080019010A1 (en) * 2006-07-18 2008-01-24 Govorkov Sergei V High power and high brightness diode-laser array for material processing applications
US20080101429A1 (en) * 2005-12-15 2008-05-01 Mind Melters, Inc. System and method for generating intense laser light from laser diode arrays
JP2019160624A (en) * 2018-03-14 2019-09-19 パナソニックIpマネジメント株式会社 Light source device and light projector

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080101429A1 (en) * 2005-12-15 2008-05-01 Mind Melters, Inc. System and method for generating intense laser light from laser diode arrays
US20080019010A1 (en) * 2006-07-18 2008-01-24 Govorkov Sergei V High power and high brightness diode-laser array for material processing applications
JP2019160624A (en) * 2018-03-14 2019-09-19 パナソニックIpマネジメント株式会社 Light source device and light projector

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