CN2906673Y - Ultra-short pulse laser beam volume holographic grating shaping device - Google Patents
Ultra-short pulse laser beam volume holographic grating shaping device Download PDFInfo
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- CN2906673Y CN2906673Y CN 200620039678 CN200620039678U CN2906673Y CN 2906673 Y CN2906673 Y CN 2906673Y CN 200620039678 CN200620039678 CN 200620039678 CN 200620039678 U CN200620039678 U CN 200620039678U CN 2906673 Y CN2906673 Y CN 2906673Y
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- 238000007493 shaping process Methods 0.000 title claims description 66
- 230000010287 polarization Effects 0.000 claims abstract description 81
- 239000013078 crystal Substances 0.000 claims abstract description 62
- 230000003287 optical effect Effects 0.000 claims description 14
- 229910013641 LiNbO 3 Inorganic materials 0.000 claims description 10
- 238000009826 distribution Methods 0.000 description 25
- 230000003595 spectral effect Effects 0.000 description 21
- 238000005516 engineering process Methods 0.000 description 16
- 238000001228 spectrum Methods 0.000 description 14
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- 238000004891 communication Methods 0.000 description 3
- 229910013553 LiNO Inorganic materials 0.000 description 2
- 238000010521 absorption reaction Methods 0.000 description 2
- 238000010586 diagram Methods 0.000 description 2
- 239000006185 dispersion Substances 0.000 description 2
- 238000001093 holography Methods 0.000 description 2
- 230000003647 oxidation Effects 0.000 description 2
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- GQYHUHYESMUTHG-UHFFFAOYSA-N lithium niobate Chemical compound [Li+].[O-][Nb](=O)=O GQYHUHYESMUTHG-UHFFFAOYSA-N 0.000 description 1
- 239000000463 material Substances 0.000 description 1
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Abstract
A volume holographic grating shaper for ultrashort pulse laser beam is composed of a crystal with volume holographic grating recorded, a broadband polarization rotator in the direction of incidence of pulse laser beam to be shaped, a second polarizer in the direction of transmitted beam, and a third polarizer in the direction of diffracted beam. Compared with the prior art, the utility model discloses to the plastic of the pulse laser beam of input, just can realize through its polarization state of modulation, the modulation range can change through selecting the grating parameter, and the light beam selectivity that the plastic came out is big, and the scope of plastic is adjustable.
Description
Technical field
The utility model relates to the pulsed laser beam apparatus for shaping, and especially a kind of volume holographic grating forming device for ultra-short pulsed laser beam based on the volume holographic grating Polarization Modulation can be applicable to technical fields such as laser measurement and information processing.
Background technology
Development along with the pulsed laser beam generating technique, the means of supplementing out economy that shaping technique for light pulse produces as ultra-short pulsed laser beam, be ultrafast spectroscopy, nonlinear optical fiber optics and high field physics provide the means of unprecedented control ultrashort light pulse waveform and have obtained extensive studies.People have been developed the technical method of the synthetic or shaping pulse of a series of light wave shapes.Wherein for pulsed laser beam greater than lns, the Kerr effect that can directly utilize electro-optical medium is to its shaping, and for shorter pulse, can utilize time domain Fourier conversion to carry out shaping, its core is to utilize template (Mask) that each frequency content that comes in spatial dispersion is carried out parallel modulation, finally reach the purpose of shaping pulse, become a kind of mainstream technology at present.Used template has vibration amplitude mask plate that the microfabrication utilized makes and phase mask plate (referring to technology [1]: A.M.Weiner formerly, J.P.Heritage, and E.M.Kirschner, " High resolutionfemtosecond pulse shaping; " J.Opt.Soc.Am.B 5,1563-1572,1988), the array type LCD space light modulator is (referring to technology [2]: A.M.Weiner formerly, " Femtosecond Pulse Shaping Using Spatial Light Modulators ", Rev.Sci.Instr.71,1929-1960,2000), acousto-optic modulator is (referring to technology [3]: C.Hillegas formerly, J.X.Tull, D.Goswami, D.Strickland, and W.S.Warren, " Femtosecond laser pulse shaping by use of microsecondradio-frequency pulses; " Opt.Lett.19,737 (1994) .M.A.Dugan, J.X.Tull, and W. S. Warren, " High-resolution acousto-opticshaping of unamplified and amplified femtosecond laser pulses " J.Opt.Soc.Am.B 14,2348-2358,1997.) etc.But formerly technology [1] is difficult for the phase change that provides continuous, each experiment must be made new template, formerly technology [2] can not be used in high repetition rate system, and be lower than the report that does not have acousto-optic modulator in the scope of 50fs, formerly technology [3] is though use more, but need complicated calculating, and can not satisfy present gating pulse laser beam particularly to the needs of pulsed laser beam at a high speed.
Because volume holographic grating is easy to realize dynamic process, multifunction and be easy to advantages such as integrated, make it in the transmission shaping of ultra-short pulsed laser beam, obtain application, referring to technology [4] (Y.Ding formerly, D.D.Nolte, Z.Zheng, et al..Brost, Bandwidth studyof volume holography in photorefractive InP:Fe for femtosecondpulse readout at 1.5 μ m.J.Opt.Soc.Am. (B), 1998,15 (11): 2763 ~ 2768).This technology provides the pulsed light beam of polarization direction perpendicular to the plane of incidence, can be by changing the grating parameter of grating, and mainly be grating cycle of grating and grating thickness and realize it is carried out the purpose of shaping.At present the medium major part of the record volume holographic grating that uses is anisotropic, but this technology does not consider to treat the resultant influence of change paired pulses shaping of the light beam polarization state of shaping.
Summary of the invention
The purpose of this utility model provides a kind of volume holographic grating forming device for ultra-short pulsed laser beam, require this device can be dynamically, multi-functionally ultra-short pulsed laser beam is carried out shaping, simple in structure again, easy to use.
Essence of the present utility model is to utilize Bragg wavelength selectivity and the refractive index of grating recording materials and the optical anisotropy of refractive index modulation degree of volume holographic grating, pulsed laser beam to input, by adjusting the pulsed laser beam that its polarization state obtains different wave and bandwidth, realization is to the purpose of beam shaping, and the scope of the spectral width of this device modulates or pulse width can be modulated by selecting grating parameter.
Technical solution of the present utility model is as follows:
A kind of volume holographic grating forming device for ultra-short pulsed laser beam, it is characterized in that comprising the crystal that has write down volume holographic grating, the grating vector of this volume holographic grating is consistent with the optical axis direction of crystal, incident direction at the pulsed laser beam for the treatment of shaping before this crystal has a wideband polarization spinner, be equipped with second polarizer in this crystal transmitted light beam direction, be equipped with the 3rd polarizer in the diffracted beam direction of this crystal.
Described crystal is the LiNbO of optically anisotropic codope
3Crystal, i.e. LiNbO
3: Fe:Mn or LiNbO
3: the Ce:Cu monocrystalline.
Before the described wideband polarization spinner of the incident direction of the pulsed laser beam for the treatment of shaping, also has one first polarizer.
The volume holographic grating of aeolotropic crystal in the utility model device is used for the modulation that the paired pulses laser beam carries out amplitude and phase place; The wideband polarization spinner is used to modulate the polarization state of pulsed laser beam of the linear polarization of input; First polaroid is used to guarantee that by the input pulse laser beam of shaping be linearly polarized light beam; This crystal transmitted light beam direction is equipped with second polarizer, is equipped with the 3rd polarizer in the diffracted beam direction of this crystal, is respectively applied for the transmitted pulse laser beam and the diffraction pulsed laser beam that take out the different polarization state.
Contrast technology formerly, the utility model device is by the polarization state of modulating pulse laser beam, realization is to the purpose of its shaping, and modulation range can be controlled by the modulated grating parameter, the light beam selectivity that shaping is come out is big, the scope of shaping is adjustable, and is easy and simple to handle, is adapted to the miniaturization of optical communication device and the needs of integrated development especially.
Basic thought of the present utility model is as follows:
The ultra-short pulsed laser beam of a branch of linear polarization incides in the volume holographic grating, because the optical anisotropy of the medium of record grating, when the polarization state of incident pulse laser beam changes, the intensity of output pulsed laser beam is in the distribution of spectrum domain and time domain also wideband polarization spinner thereupon, be equipped with second polarizer in this crystal transmitted light beam direction, be equipped with the 3rd polarizer in the diffracted beam direction of this crystal.Change, promptly corresponding variation has taken place in its spectral width, pulse width and waveform.When the grating parameter of volume holographic grating changed, the spectral width of Polarization Modulation or the scope of pulse width variation are also corresponding to change.Therefore utilize volume holographic grating,, can obtain the output pulsed laser beam of different pulse widths and waveform, realize the purpose that the paired pulses laser beam carries out shaping by the polarization state of modulation incident pulse laser beam.
Description of drawings
Fig. 1 is the basic structure synoptic diagram of a specific embodiment of the utility model volume holographic grating forming device for ultra-short pulsed laser beam.
Fig. 2 be grating parameter not simultaneously, the change curve of the spectral bandwidth of Polarization Modulation.
Fig. 3 is an input pulse width when being 30fs, in the L1 transmitted pulse laser beam after the shaping perpendicular to the intensity of the polarized component of the plane of incidence at the distribution of spectrum domain and the curve of wave form varies.
Fig. 4 is an input pulse width when being 30fs, in the L1 transmitted pulse laser beam after the shaping perpendicular to the intensity of the polarized component of the plane of incidence at the distribution of time domain and the curve of wave form varies.
Fig. 5 is an input pulse width when being 30fs, and the intensity of polarized component that is parallel to the plane of incidence in the L1 transmitted pulse laser beam after the shaping is at the distribution of spectrum domain and the curve of wave form varies.
Fig. 6 is an input pulse width when being 30fs, and the intensity of polarized component that is parallel to the plane of incidence in the L1 transmitted pulse laser beam after the shaping is at the distribution of time domain and the curve of wave form varies.
Fig. 7 is an input pulse width when being 30fs, and the intensity of the intrafascicular polarized component perpendicular to the plane of incidence of the L2 diffraction pulsed laser light after the shaping is at the distribution of spectrum domain and the curve of wave form varies.
Fig. 8 is an input pulse width when being 30fs, and the intensity of the intrafascicular polarized component perpendicular to the plane of incidence of the L2 diffraction pulsed laser light after the shaping is at the distribution of time domain and the curve of wave form varies.
Fig. 9 is an input pulse width when being 30fs, and the L2 diffraction pulsed laser light after the shaping is intrafascicular to be parallel to the intensity of polarized component of the plane of incidence at the distribution of spectrum domain and the curve of wave form varies.
Figure 10 is an input pulse width when being 30fs, and the L2 diffraction pulsed laser light after the shaping is intrafascicular to be parallel to the intensity of polarized component of the plane of incidence at the distribution of time domain and the curve of wave form varies.
Embodiment
Below in conjunction with accompanying drawing the utility model is elaborated.
See also Fig. 1 earlier, Fig. 1 is the basic structure synoptic diagram of a specific embodiment of the utility model volume holographic grating forming device for ultra-short pulsed laser beam.As seen from the figure, the utility model volume holographic grating forming device for ultra-short pulsed laser beam, comprise the crystal 1 that has write down volume holographic grating, the grating vector K of this volume holographic grating is consistent with the optical axis direction of crystal 1, incident direction at the pulsed laser beam L0 that treats shaping before this crystal 1 has a wideband polarization spinner 2, be equipped with second polarizer 4 in this crystal 1 transmitted light beam L1 direction, be equipped with the 3rd polarizer 5 in the diffracted beam L2 of this crystal 1 direction.
Described crystal 1 is the LiNbO of optically anisotropic codope
3Crystal, i.e. LiNbO
3: Fe:Mn or LiNbO
3: the Ce:Cu monocrystalline.Before the described wideband polarization spinner 2 of the incident direction of the pulsed laser beam L0 that treats shaping, also has first polarizer 3.
Volume holographic grating has been recorded in the optically anisotropic crystal 1, the pulsed laser beam L0 that treats shaping through first polarizer 3 and wideband polarization spinner 2 after, be incident to crystal 1 with the θ angle, and the refraction angle in crystal 1 is the Bragg angle of the volume holographic grating that is write down, behind volume holographic grating, output transmitted pulse laser beam L1 and diffraction pulsed laser beam L2, they are respectively through placing transmitted pulse laser beam L1 behind the volume holographic grating and second polarizer 4 and the 3rd polarizer 5 on the diffraction pulsed laser beam L2 direction of propagation, form pulsed laser beam L3 and L4 after the shaping.
The optically anisotropic crystal that has described in Fig. 1 is the LiNbO of codope
3Crystal is the same component LiNbO of high temperature oxidation process
3: Fe:Mn or LiNbO
3: the Ce:Cu monocrystalline.Its optical axis is along the x direction of principal axis.The volume holographic grating that is write down in the crystal 1 writes down with two color light two central record methods, referring to K.Buse, A.Adibi, et al., Nature, 397 (7), pp.665-668,1998, Nonvolatile holographic storage holograms in doubly doped lithiumniobate crystals, the grating vector of the grating that is write down is along the x direction of principal axis.
Before wideband polarization spinner 2 described in Fig. 1 places crystal 1, be used for changing the polarization state of the laser beam for the treatment of shaping, the size of the angle of xz face among the polarization vector of pulsed laser beam of incident and Fig. 1 is changed, thereby the intrafascicular light beam vibration amplitude component vertical and that be parallel to the plane of incidence of the pulsed laser light of incident is changed.
Before first polarizer 3 described in Fig. 1 places wideband polarization spinner 2, be used to guarantee that the pulsed laser beam L0 that treats shaping is the pulsed laser beam of linear polarization through polarizer 3 backs.
After second polarizer 4 described in Fig. 1 and the 3rd polarizer 5 place crystal 1.Because from the pulsed laser beam L1 and L2 of grating outgoing, existing have the beam component that is parallel to the plane of incidence again perpendicular to the plane of incidence, obtain the beam component of polarization direction if desired perpendicular to the plane of incidence, only need to adjust second polarizer 4 and the 3rd polarizer 5, make its light transmission shaft direction perpendicular to the plane of incidence; Use the polarization direction to be parallel to the light beam of the plane of incidence if desired, only need to adjust second polarizer 4 and the 3rd polarizer 5, make its light transmission shaft direction be parallel to the plane of incidence and perpendicular to separately direction of beam propagation.
As follows to labor of the present utility model:
In crystal 1, the grating vector K of the volume holographic grating that is write down is consistent with optical axis direction, and all along the x direction of principal axis, Λ is the grating cycle, and d is a grating thickness, and K=2 π/Λ.
Treat the pulsed laser beam L0 of shaping, behind first polarizer 3, its distribution of amplitudes is u
0(t), be incident in the crystal 1 with the θ angle by wideband polarization spinner 2 backs, its centre wavelength is λ
0, polarization vector e
r=sin e
Ro+ cos e
Re, is the polarization vector of grating and the angle between the xz face, is the polarization angle in the literary composition.Because the anisotropy of crystal 1, each spectrum component of the ultra-short pulsed laser beam of free-throw line polarization all is divided into the o light beam R that polarization vector is parallel to the plane of incidence in volume holographic grating
o(0, λ)=u
0(λ) sin and polarization vector are perpendicular to the e light beam R of the plane of incidence
e(0, λ)=u
0(λ) cos , the light beam of two kinds of polarization eigen states is diffraction respectively.Be similar to the Kogelnik coupled wave theory, establish and have only transmitted light L1:R in the grating
1(z. λ) e
nWith diffraction light L2:S
1(z, λ) e
n, wherein i=o or e represent the situation of the e beam diffraction that the grating pair polarization direction is parallel to the plane of incidence perpendicular to the o light beam and the polarization direction of the plane of incidence respectively.e
RiAnd e
SiBe normalized polarization vector.If θ
BBe the Bragg incident angle of the volume holographic grating that write down in the crystal 1, sin θ
B=λ
0/ 2n
0Λ, sin θ=n
0Sin θ
BBy the coupled wave theory of Kogelnik, can get following coupledwave equation:
cosθ
BR
i′+α(λ)R
i=-jκ
i(λ)(e
ri·e
si)S
i
cosθ
BS
i′+(α(λ)+iθ
i(λ))S
i=-jκ
i(λ)(e
ri·e
si)R
i (1)
Symbol wherein ' expression asks first order derivative to z, α (λ)=μ c σ (λ)/2n
i(λ), θ
i(λ)=Κ cos θ
B-Κ
2λ/4 π n
i(λ), κ
i(λ)=π n
1i/ λ-μ c σ
1/ 8n
i(λ), σ (λ) and n
i(λ) be the average conductivity and the refractive index of volume holographic grating recording medium, n
1iAnd σ
1Be respectively n
i(λ) and the degree of modulation of σ (λ), n
i(λ) can provide by the Sellmeier formula.
For reading the normal light component of light in crystal 1, (e
RoE
So)=1, and for unusual light component, we obtain (e
ReE
Se)=cos (2 θ
B).Consider the effect of dispersion of grating medium, to θ
iMaking single order Taylor launches and can get:
, Δ λ=λ-λ wherein
0,
, symbol here ' and expression asks first order derivative to λ, can get the amplitude R of the pulsed light beam of different polarization component in L1 and the L2 light beam thus
i(d, λ) and S
i(d λ), is respectively:
Wherein
υ
i=κ
i(e
ri·e
si)d/cosθ
B (3)
ζ
i=-θ
id/2cosθ
B
R
o(0,λ)=u
0(λ)sin,R
o(0,λ)=u
0(λ)cos。When not considering the absorption of grating medium, σ (λ)=0, σ
1=0, κ
1(λ)=/ π n
1i(e
RiE
Si)/λ.
Space charge field E by the linear electro-optic effect generation
ScReach the optical axis that grating vector all is parallel to crystal, and all along the x direction.For the beam component of the vertical polarization in the grating, the size of grating refractive index degree of modulation is
, n
0For corresponding to central wavelength lambda
0The o optical index of crystal.And for the beam component of parallel polarization, the size of grating refractive index degree of modulation is
The intensity distributions of L1 and each polarized component of L2 output pulsed laser beam can be obtained by (2) formula:
I
Ri(d,λ)=|R
i(d,λ)|
2 (4)
I
Si(d,λ)=|S
i(d,λ)|
2
Further equation (2) is done the Fourier conversion of time domain, get final product the amplitude of each polarized component of L1 and L2 output pulsed laser beam at the distribution r of time domain
i(d, t) and s
i(d, t), its intensity distributions is:
I
ri(d,t)=|r
i(d,t)|
2 (5)
I
si(d,t)=|s
i(d,t)|
2
The intensity of the L1 of output and the pulsed laser beam of L2 is polarization state perpendicular to the plane of incidence and the energy sum that is parallel to the beam component of the plane of incidence, promptly
I
R(d,λ)=|R
o(d,λ)+R
c(d,λ)|
2 (6)
I
S(d,λ)=|S
o(d,λ)+S
c(d,λ)|
2
L1 and L2 light beam be respectively by behind second polarizer 4 and the 3rd polaroid 5, if the light transmission shaft direction of second polarizer 4 and the 3rd polarizer 5 perpendicular to the plane of incidence, the polarization vector of outgoing pulse laser beam L3 and L4 is promptly perpendicular to the plane of incidence; If the light transmission shaft direction of second polarizer 4 and the 3rd polarizer 5 is parallel to the plane of incidence and perpendicular to separately direction of beam propagation, the polarization vector of outgoing pulse laser beam L3 and L4 promptly is parallel to the plane of incidence.
The intensity of the spectral width indicating impulse of pulse is reduced to the pairing spectral width of its most peaked half.When the polarization angle of incident pulse laser beam changed, corresponding variation also took place in the pulsed laser beam L3 of outgoing and the spectral width of L4 and intensity distributions.When the polarization vector of the pulsed laser beam that incides volume holographic grating is parallel to the plane of incidence, polarization angle =0 o'clock has only the e beam component in the grating, and this moment is to there being different incident light spectrum width Delta λ
InpIncident pulse L0, the maximal value of the spectral width of diffraction light pulse L2 is the wavelength range of choice Δ λ of grating
GeEqually, when the polarization vector of the pulsed laser beam that incides volume holographic grating during perpendicular to the plane of incidence, polarization angle =pi/2, the maximal value of the spectral width of diffraction light pulse L2 is the wavelength range of choice Δ λ of grating
GoWhen not considering the absorption of grating recording medium, Δ λ
GoWith Δ λ
GeProvide by following formula:
Wherein
Be the incident pulse laser beam for these two kinds of polarization states, grating diffration efficient is reduced to the pairing ξ of its peaked half
iMean value.
So when the polarization angle of incident pulse laser beam changed to =pi/2 gradually from =0, the maximum spectral bandwidth of the intensity of pulsed laser beam L2 will be at Δ λ
GeWith Δ λ
GoBetween change.Therefore, the spectral width variation range of the pulsed laser beam L2 shaping of Polarization Modulation is:
Δλ
rang=|Δλ
Go-Δλ
Ge| (8)
The spectral width variation range of the intrafascicular beam component perpendicular to the xz face of L2 pulsed laser light is Δ λ
Go, and its spectral width variation range that is parallel to the beam component of xz face is Δ λ
GeFor the incident pulse laser beam for the treatment of shaping, Δ λ
Go, Δ λ
GeWith Δ λ
RangCan control by the grating parameter of selective body holographic grating, promptly can select corresponding grating parameter, satisfy the needs of the output pulsed laser beam spectral width variation range of polarization state modulation, realize the purpose that the pulsed laser beam of incident is carried out shaping.
Compare with technology formerly, technique effect of the present utility model or advantage are as follows:
(1) utilize Polarization Modulation, easy and simple to handle
Be different from technology formerly, the utility model device is by modulating by the polarization state of the pulsed laser beam of shaping, utilize the optical anisotropy of crystal and the Bragg wavelength selectivity of volume holographic grating, export the waveform and the bandwidth of pulse and reached control, realized it is carried out the purpose of shaping.
(2) scope of Polarization Modulation is adjustable
Compare with technology formerly, optically anisotropic LiNO is arranged because the crystal 1 of this device uses
3Crystal 1 utilizes LiNO
3The photorefractive effect of crystal, be easier to record within it and wipe volume holographic grating, and also can write down a plurality of volume holographic gratings, therefore the grating parameter of the volume holographic grating in this device crystal 1 changes easily, thereby the scope of the spectral width of the output pulsed laser beam of Polarization Modulation or pulse width can be controlled by the grating parameter that changes volume holographic grating.
(3) diffraction efficiency of output pulse is higher after the shaping
Compare with the template of using in the technology formerly, utilize the element of volume holographic grating as light beam vibration amplitude and phase modulation (PM), by volume holographic grating higher diffraction efficiency output characteristics as can be known, the light intensity that the pulsed laser beam of this device shaping output has is higher.
(4) Shu Chu light beam has multiple choices
For the input pulse laser beam L0 that treats shaping, from crystal 1 output pulsed laser beam L1 and L2 respectively through second polarizer 4 and and the 3rd polarizer 5 after, form output pulsed laser beam L3 and L4, L1 and L2, the intensity distributions of L3 and L4 and waveform all change with the change of the polarization angle size of incident pulse laser beam L0, and multiple choices can be arranged according to actual needs.
(5) be easy to realize multifunction and miniaturization of devices and integrated
This installs employed LiNbO
3Crystal 1 has effects such as good piezoelectricity, photoelastic, acousto-optic, electric light, hot light, and in crystal, utilize photorefractive effect can write down a plurality of volume holographic gratings, therefore can in crystal, realize multiple function, be beneficial to the microminiaturization optics integrated system of realizing multiple function element combination, be adapted to the needs of optical communication device miniaturization and integrated development especially.
It is as follows to utilize the utility model to treat the design procedure of pulsed laser beam shaping of shaping:
The 1 selected pulsed laser beam for the treatment of shaping
This device can carry out shaping to the pulsed laser beam L0 of random waveform.Less when chanting towards width of input pulse L0, when spectral width was big, this device was bigger to the adjustable extent of its shaping.Selected treat shaping chant impulse light light beam, determine its centre wavelength, pulse width and spectral width.
Chant towards being example with Gauss, the distribution of amplitudes of its time domain is:
T express time wherein, ω
0=2 π c/ λ
0Be centre frequency,
, Δ τ is the pulse width of pulse strength in time domain.The distribution of amplitudes of its spectrum domain can be by (9) formula is obtained as Fourier transform:
The spectral width of this pulse is Δ λ
Inp=0.441 λ
0 2/ c Δ τ.If get central wavelength lambda
0=1.06 μ m, Δ τ=30fs then can get Δ λ
Inp=55nm.
The volume holographic grating with corresponding grating parameter is chosen in 2 requirements according to the shaping scope
For the pulsed laser beam for the treatment of shaping selected in the concrete steps (1), again according to actual needs, need to determine the spectral width of light beam of shaping output and the scope of pulse width variation, thus the grating parameter of the volume holographic grating that is write down in the crystal of determining to choose 1.
For example for the Gaussian ultra-short pulsed laser beam described in the step 1, selected crystal 1 is the same component LiNbO of the high temperature oxidation process of codope
3: Fe:Mn or LiNbO
3: the Ce:Cu monocrystalline.Thickness d=the 1mm of the grating that is write down, space charge field E
Sc=5.0 * 10
6During v/m, Fig. 2 has provided the range delta lambda that the light beam light spectral width of the intrafascicular different polarization component of L2 diffraction pulsed laser light of the Polarization Modulation that is calculated by (7) formula changes
GoWith Δ λ
GeSituation with the variation of grating cycle.As seen from Figure 2, select the bigger grating cycle, can obtain bigger Δ λ
GoWith Δ λ
GeThereby, Δ λ
RangAlso corresponding the change greatly.By (7) Shi Kede, with Δ λ
Go=33.87nm, Δ λ
Ge=25.52nm, Δ λ
RangThe desirable d=1mm of the corresponding grating thickness of=8.35nm, the grating cycle is got Λ=3 μ m, and the grating cloth loudspeaker lattice incident angle of L0 pulsed laser beam this moment in crystal is θ
B=4.54 °, the incident angle that is incident to crystal is θ=2.65 °.
3 realize the shaping of light beam
1. according to the mode described in the embodiment (2), chosen body holography with corresponding grating parameter after, for the incident pulse laser beam L0 that treats shaping, determine that according to the Bragg angle of grating it is incident to the incident angle of crystal 1.
2. according to the polarization state of L0 incident pulse laser beam, adjust first polarizer 3 that places among Fig. 1 on the crystal 1 preceding L0 light path.If L0 is a linearly polarized light, make the light transmission shaft direction of first polarizer 3 consistent with the direction of the polarization vector of L0; If L0 is a non-linear polarization light, adjust first polarizer 3, making from the pulsed laser beam of first polarizer, 3 outgoing is linearly polarized light and its intensity maximum.
3. adjust place crystal 1 before, the wideband polarization spinner 2 on first polarizer, the 3 back L0 incident pulse laser optical paths, make through the polarization vector of the pulsed laser beam that is incident to crystal 1 behind the wideband polarization spinner 2 and the angle of plane of incidence xz face to change between the pi/2 0.And observe from the pulsed laser beam L1 and the L2 of crystal 1 back output, the corresponding variation will take place in their distributions on spectrum domain and time domain.
4. adjust second polarizer 4 and the 3rd polarizer 5.It is perpendicular or parallel in the pulsed laser beam of the plane of incidence that second polarizer 4 takes out in the L1 light beams polarization direction, and it is perpendicular or parallel in the pulsed laser beam of the plane of incidence that the 3rd polarizer 5 can take out in the L2 light beam polarization direction.If behind the beam shaping, need to use the light beam of polarization direction perpendicular to the plane of incidence, then adjust second polarizer 4 and the 3rd polarizer 5, its light transmission shaft direction is placed perpendicular to the plane of incidence.If behind the beam shaping, need to such an extent that be parallel to the light beam of the plane of incidence to the polarization direction, adjust second polarizer 4 and the 3rd polarizer 5 respectively, make its light transmission shaft direction be parallel to plane of incidence xz face, and perpendicular to the direction of propagation of L1 and L2 light beam.
5. according to the L1 of output, L2, L3, wideband polarization spinner 2 is adjusted in the spectral width of L4 pulsed laser beam and the variation of waveform, selects required pulsed laser beam.For above-mentioned Gaussian input pulse laser beam, the intrafascicular polarization direction of L1 pulsed laser light that Fig. 3 and Fig. 4 have provided output is perpendicular to the distribution in spectrum domain (Fig. 3) and time domain (Fig. 4) of the beam component of the plane of incidence, and its waveform is consistent in the distribution of time domain with the Gauss pulse of incident; Fig. 5 and Fig. 6 have provided the polarization direction and have been parallel to the distribution of the beam component of the plane of incidence in spectrum domain (Fig. 5) and time domain (Fig. 6), and its waveform is compared in the distribution of time domain with the pulsed laser beam of input, has had more a secondary lobe.L2 pulsed laser beam for output, Fig. 7 and Fig. 8 have provided the polarization direction perpendicular to the distribution in spectrum domain (Fig. 7) and time domain (Fig. 8) of the beam component of the plane of incidence, its waveform is compared in the distribution of time domain with the pulsed laser beam of input, more is tending towards flat-topization; Fig. 9 and Figure 10 have provided the polarization direction and have been parallel to the distribution of the beam component of the plane of incidence in spectrum domain (Fig. 9) and time domain (Figure 10), and than the distribution of the pulsed laser beam of importing in time domain, its waveform has been divided into two pulses.
By Fig. 3-10 as can be seen, by the utility model device, the Gauss pulse L0 of incident is shaped as the laser pulse light beam of different wave and bandwidth.We can be according to actual needs the difference of pulsed laser beam intensity distributions and waveform on spectrum domain or time domain, the polarization state that is incident to the pulsed laser beam of this device by adjustment can obtain required pulsed laser beam.
For the pulse of other non-Gaussian, also can adopt above-mentioned similar method that it is carried out shaping.
By above analysis and on probation showing, shaping for the pulsed laser beam of importing, only need by rotation adjusting wideband polarization spinner, second polarizer and the 3rd polarizer can be realized simply, modulation range can change by selecting grating parameter, the light beam selectivity that shaping is come out is big, the scope of shaping is adjustable, is adapted to the miniaturization of optical communication device and the needs of integrated development especially.The utility model device can be dynamically, multi-functionally ultra-short pulsed laser beam is carried out shaping, has characteristics simple in structure, easy to use.
Claims (3)
1, a kind of volume holographic grating forming device for ultra-short pulsed laser beam, it is characterized in that comprising the crystal (1) that has write down volume holographic grating, the grating vector of this volume holographic grating (K) is consistent with the optical axis direction of crystal (1), this crystal (1) is preceding to have a wideband polarization spinner (2) in the incident direction for the treatment of the pulsed laser beam of shaping (L0), be equipped with second polarizer (4) in this crystal (1) transmitted light beam (L1) direction, diffracted beam (L2) direction in this crystal (1) is equipped with the 3rd polarizer (5).
2, volume holographic grating forming device for ultra-short pulsed laser beam according to claim 1 is characterized in that described crystal (1) is the LiNbO of optically anisotropic codope
3Crystal, i.e. LiNbO
3: Fe:Mn or LiNbO
3: the Ce:Cu monocrystalline.
3, volume holographic grating forming device for ultra-short pulsed laser beam according to claim 1 is characterized in that also having one first polarizer (3) before at the described wideband polarization spinner of the incident direction for the treatment of the pulsed laser beam of shaping (L0) (2).
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Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN100388059C (en) * | 2006-02-23 | 2008-05-14 | 中国科学院上海光学精密机械研究所 | Ultra-short pulse laser beam volume holographic grating shaping device |
CN105190422A (en) * | 2013-03-14 | 2015-12-23 | 雷蒙特亚特特拉维夫大学有限公司 | Tunable nonlinear beam shaping by a non-collinear interaction |
CN105229499A (en) * | 2013-03-13 | 2016-01-06 | 北卡罗莱纳州立大学 | There is the polarization conversion system of geometric phase hologram |
-
2006
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Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN100388059C (en) * | 2006-02-23 | 2008-05-14 | 中国科学院上海光学精密机械研究所 | Ultra-short pulse laser beam volume holographic grating shaping device |
CN105229499A (en) * | 2013-03-13 | 2016-01-06 | 北卡罗莱纳州立大学 | There is the polarization conversion system of geometric phase hologram |
CN105229499B (en) * | 2013-03-13 | 2018-12-04 | 北卡罗莱纳州立大学 | Polarization conversion system with geometric phase hologram |
US10386558B2 (en) | 2013-03-13 | 2019-08-20 | Imagineoptix Corporation | Polarization conversion systems with geometric phase holograms |
CN105190422A (en) * | 2013-03-14 | 2015-12-23 | 雷蒙特亚特特拉维夫大学有限公司 | Tunable nonlinear beam shaping by a non-collinear interaction |
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