CN203799129U - Mixed spatial filter with low cut-off frequency - Google Patents

Mixed spatial filter with low cut-off frequency Download PDF

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CN203799129U
CN203799129U CN201320775747.5U CN201320775747U CN203799129U CN 203799129 U CN203799129 U CN 203799129U CN 201320775747 U CN201320775747 U CN 201320775747U CN 203799129 U CN203799129 U CN 203799129U
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volume bragg
bragg grating
grating
spatial
cutoff frequency
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袁孝
张翔
邹快盛
封建胜
熊宝星
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Suzhou University
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Suzhou University
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Abstract

The utility model discloses a mixed spatial filter with a low cut-off frequency, and the spatial filter comprises a volume Bragg grating, a first focusing lens, a pin hole, and a second focusing lens, wherein the volume Bragg grating, the first focusing lens, the pin hole and the second focusing lens are sequentially arranged along a light path. The volume Bragg grating is used for achieving the Bragg diffraction of incident light. The first focusing lens is used for achieving the Fourier transform of the diffraction light of the volume Bragg grating, and transferring a light beam from a space domain to a frequency domain. The pin hole achieves the second spatial filtering of the light beam. The second focusing lens is used for transferring the light beam from the frequency domain to the space domain, thereby completing the spatial filtering. The spatial filter provided by the utility model is primarily different from a conventional spatial filter which just employs a lens and a pin hole, thereby reducing the possibility that focused laser causes a hole-blocking effect and the burning of a filter element. The spatial filter is lower in cut-off frequency and low-frequency loss efficiency, achieves an excellent capability of low-pass filtering, and is higher in bearable laser power.

Description

Low cutoff frequency blending space wave filter
Technical field
The utility model relates to optical filtering technology field, particularly relates to a kind of low cutoff frequency blending space wave filter that has angle Selection filter capacity and low cutoff frequency, Frequency Power Loss rate concurrently.
Background technology
It is very sensitive that the high coherence of laser makes it disturb various spaces, and the diffraction that all kinds of interference cause can reduce the spatially uniform of laser.In advanced field of laser devices, Small-scale Self-focusing effect becomes the main cause that affects near-field beam quality, has seriously developed the load capacity of advanced laser aid.The near-field uniform that improves laser contributes to improve the load capacity of advanced laser aid.
In nearly 40 years of advanced laser aid development, although the damage threshold of all kinds of optical components improves constantly, being gradually improved of all kinds of Beam Control technology, and along with the introducing of relevant Active Compensation technology, near-field beam distributing homogeneity also improves constantly, the load capacity of advanced laser aid is greatly improved, as U.S.'s Lao Lunsi-livermore national laboratory is brought up to 7J/cm2/3 ω/3ns by the 2J/cm2/3 ω/3ns of Nova device.But damage problem remains one of puzzlement device stable operation and further " bottleneck " problem improving of load capacity.The spatial filter Primary Component that is absolutely necessary.Traditional Space wave filter (" 4f " system) based on Fourier transform principle is the most frequently used wave filter.First it focus on light beam, utilizes the Fourier transform effect of lens to separate spatial frequency composition different in laser, and the angle of divergence that spatial frequency is high is large, then utilizes pin hole (or single-mode fiber) to choose required angular spectrum component, removes harmful light noise.Focal beam spot size determines by the focal length of lens, lambda1-wavelength bore, wavelength and the angle of divergence, and the degree of pinhole diameter control filtering, realizes low pass spatial filtering.
Now in built advanced laser aid, employing be traditional spatial filter.There is an insurmountable contradiction in it, in order to obtain enough good filter effect, the aperture of spatial filter is conventionally all very little; But due to the angle of divergence and the spatial modulation of incoming laser beam itself, far field beam is distributed and have significantly " shirt rim " region, there is " the gambling effect of holes " in these " shirt rim " regions and aperture edge action, therefore seriously limit the diameter design of aperture, directly caused spatial filter filter capacity to decline.
Only have the angle of divergence when incident beam minimum, and space distribution is when more even, just can reduce the region, shirt rim of far-field distribution, thereby solve the inherent shortcoming of Traditional Space wave filter.Low cutoff frequency blending space wave filter of the present utility model utilizes the outstanding angle Selection characteristic of Volume Bragg grating just, dispersing of light beam can greatly be reduced little, simultaneously by the most of spatial modulation filtering in light beam, the incident light quality that improves spatial filter with this, helps condenser lens to obtain better far field beam and distributes.Reduce orifice size, make spatial filter obtain less cutoff frequency, improve filter capacity.
Traditional Space filter optimization technology based on volume Bragg grating can effectively be eliminated medium-high frequency and modulate the impact on light beam, cutoff frequency and the Frequency Power Loss rate of reduction Traditional Space wave filter, effectively control the transmission of amplified spontaneous emission and the near field beam distribution of laser, greatly improve the reliability of system, reduce volume and the cost of device, be one of formant technology of current Development of Laser Technology, have great importance for the development that promotes advanced laser technology.
Domestic visible a kind of volume holographic grating forming device, its purposes is to ultra-short pulse laser Shu Jinhang shaping (Chinese patent 200610024096.0); Visible a kind of narrow-band optical filter, the publication being combined by a transmission-type Volume Bragg grating and blocks of reflecting Volume Bragg grating report (Chinese patent 200910089834.3), obtains micromicron magnitude Laser output; Visible a kind of high-power laser diffraction type spatial filter, has used the publication of separate type volume Bragg grating or biplate integrated form grating to report (Chinese patent 200910312157.7).Visible a kind of ultra-short pulsed laser wave filtering device, the first quarter wave plate, the first positive lens, aperture, non-linear positive dispersion transparent solid material, the second positive lens, the second quarter wave plate and the analyzer that are set gradually by same optical axis form, the publication report (Chinese patent 200710038661.3) that described non-linear positive dispersion transparent solid material is BK7 glass.Open source literature report (the Zheng Guangwei that the people such as the visible photoelectricity scientific and engineering Zheng Guang of institute of National University of Defense technology prestige deliver, what flame indigo plant etc., " low pass spatial filtering of transmission-type volume phase grating to continuous laser beam ", " Acta Optica ", the 4th phase of 29 volumes in 2009; Zheng Guangwei, Liu Li etc., " transmission-type body grating is to the research of Ultrashort Pulsed Gaussian Beams diffraction characteristic ", " Acta Optica ", the 1st phase of 29 volumes in 2009; Zheng Guangwei, Tan Jichun etc., " reflection-type body grating is analyzed Ultrashort Pulsed Gaussian Beams diffraction characteristic ", " Acta Optica ", the 12nd phase in 2009) study the diffraction characteristic of volume phase grating to laser, this is made into the relevant property of wave filter with application body grating; The preparation of the visible Volume Bragg grating for implementation space filtering, in photopolymer, recorded Volume Bragg grating with holography method, complete the open source literature report (Zheng Haobin of the experiment of laser beam two-dimensional space low-pass filtering, what flame indigo plant etc., " for the preparation of the Volume Bragg grating of implementation space filtering ", " photoelectric project ", the 1st phase in 2009).
Therefore,, for above-mentioned technical matters, be necessary to provide a kind of low cutoff frequency blending space wave filter.
Utility model content
In view of this, the purpose of this utility model is to be difficult to reduce for the Traditional Space filter cutoff frequency of prior art, Frequency Power Loss rate is higher, and easily there is Pinhole closure, feedback and light path shift phenomenon, a kind of low cutoff frequency blending space wave filter that has low cutoff frequency and Frequency Power Loss rate concurrently is provided.
To achieve these goals, the technical scheme that the utility model embodiment provides is as follows:
A kind of low cutoff frequency blending space wave filter, described low cutoff frequency blending space wave filter comprises Volume Bragg grating, the first condenser lens, pin hole and the second condenser lens placed successively along light path, described Volume Bragg grating carries out Bragg diffraction to incident light, described the first condenser lens carries out Fourier transform to the diffraction light of Volume Bragg grating, light beam is converted to frequency domain from spatial domain, described pin hole is realized spatial filtering for the second time to light beam, described the second condenser lens is converted to spatial domain by light beam from frequency domain, completes spatial filtering.
As further improvement of the utility model, described Volume Bragg grating comprises the first Volume Bragg grating and the second Volume Bragg grating, the second Volume Bragg grating carries out the spatial filtering for the first time of first direction to incident light, the first Volume Bragg grating is realized the spatial filtering for the second time that light beam is carried out to second direction, and the grating vector of described the first Volume Bragg grating and the second Volume Bragg grating is mutually orthogonal.
As further improvement of the utility model, described Volume Bragg grating is transmission-type grating, and Volume Bragg grating is phase-type Volume Bragg grating.
As further improvement of the utility model, described Volume Bragg grating is uniform period body grating.
As further improvement of the utility model, described Volume Bragg grating is two piece combined type transmission type Volume Bragg gratings.
As further improvement of the utility model, described Volume Bragg grating is formed by two orthogonal daughter grating combinations of grating grid line.
The utlity model has following beneficial effect:
The utility model uses the good angular selectivity of Volume Bragg grating, makes the incident light of Traditional Space wave filter possess the less angle of divergence and the distribution of more uniform near-field beam;
The volume Bragg grating that transmission-type volume Bragg grating can be realized the control of the incident light angle of divergence and phase-type well can be realized the modulation of a phase;
The Volume Bragg grating Heat stability is good that adopts photic temperature-sensitive refractive index glass to prepare, the high permeability to visible ray to near-infrared band, the laser power that can carry is higher;
Adopt uniform period body grating and combined type body grating can reach better filter effect;
Daughter grating adopts the mutually orthogonal structure of grating vector to realize the low cutoff frequency spatial filtering of the two dimension of incident light, daughter grating adopts the parallel structure of grating vector to eliminate residual spatial frequency composition after the filtering of single block grating, obtains the filter effect without secondary lobe.
Brief description of the drawings
In order to be illustrated more clearly in the utility model embodiment or technical scheme of the prior art, to the accompanying drawing of required use in embodiment or description of the Prior Art be briefly described below, apparently, the accompanying drawing the following describes is only some embodiment that record in the utility model, for those of ordinary skill in the art, do not paying under the prerequisite of creative work, can also obtain according to these accompanying drawings other accompanying drawing.
Fig. 1 is the structural representation of low cutoff frequency blending space wave filter in the utility model the first preferred embodiment;
Fig. 2 is the angle Selection simulation drawing of volume Bragg grating in the first preferred embodiment;
Fig. 3 is that the spectrum of volume Bragg grating in the first preferred embodiment is selected simulation drawing;
Fig. 4 is the PSD curve that the filtering hot spot of prior art spatial filter is corresponding;
Fig. 5 is the PSD curve that the filtering hot spot of low cutoff frequency blending space wave filter in the utility model the first preferred embodiment is corresponding;
Fig. 6 is the structural representation of the volume Bragg grating that formed by two orthogonal daughter grating combinations of grating grid line in the utility model the first preferred embodiment;
The structural representation of low cutoff frequency blending space wave filter in Fig. 7 the utility model the second preferred embodiment;
Fig. 8 is that the light wave vector in volume Bragg grating is related to schematic diagram.
Embodiment
Below in conjunction with the accompanying drawing in the utility model embodiment, the technical scheme in the utility model embodiment is clearly and completely described, obviously, described embodiment is only the utility model part embodiment, instead of whole embodiment.Based on the embodiment in the utility model, those of ordinary skill in the art are not making the every other embodiment obtaining under creative work prerequisite, all should belong to the scope of the utility model protection.
The utility model provides a kind of and Traditional Space wave filter has been realized to the low cutoff frequency spatial filter of optimizing by the outstanding angle Selection characteristic of Volume Bragg grating.In the utility model, low cutoff frequency blending space wave filter has been broken through the restriction of Traditional Space wave filter aperture to cutoff frequency and Frequency Power Loss rate, under identical aperture condition, can obtain lower cutoff frequency and Frequency Power Loss rate, and simple in structure, efficiency is high.
In the structural representation of the first preferred embodiment of the low cutoff frequency blending space wave filter shown in Fig. 1, low cutoff frequency blending space wave filter comprises Volume Bragg grating 1, the first condenser lens 2, pin hole 3 and the second condenser lens 4.Volume Bragg grating 1, for incident light is carried out to angle Selection filtering for the first time, reduces the angle of divergence of incident light simultaneously; The first condenser lens 2, for the diffraction light of Volume Bragg grating 1 is carried out to Fourier transform, is converted to frequency domain by light beam from spatial domain; Pin hole 3 is realized spatial filtering for the second time to light beam; The second condenser lens 4 is converted to spatial domain by light beam from frequency domain, completes spatial filtering.
Preferably, Volume Bragg grating 1 is transmission-type grating, and is phase-type Volume Bragg grating.Volume Bragg grating is uniform period body grating.Volume Bragg grating is two piece combined type transmission type Volume Bragg gratings, is formed by two orthogonal daughter grating combinations of grating grid line.
Volume Bragg grating is prepared from by photic temperature-sensitive refractive index glass, and photic temperature-sensitive refractive index glass is the silicate glass doped with cerium, silver and fluorine.
Volume Bragg grating 1 has outstanding angle, wavelength selectivity and high diffraction efficiency as angle Selection filter element, is considered to desirable spectrum and angle Selection device, has very high adjustability.The parameters such as incident angle, angle of diffraction, centre wavelength, angle (spectrum) selectivity, can regulate by changing the grating structural parameters such as grating thickness, refractive index modulation degree, grating cycle, grating vector pitch angle.The outstanding optical property of Volume Bragg grating 1 is mainly manifested in:
(1) angle Selection reaches 0.1~10mrad (transmission-type), or 10~100mrad (reflection-type);
(2) spectral selectivity reaches 0.3~20nm (transmission-type), or 0.01~10nm (reflection-type);
(3) diffraction efficiency is high, and 633nm can reach 99% (transmission-type) or 97% (reflection-type) to 1550nm scope;
(4) damage threshold is high, and for the YAG laser of 1ns, damage threshold can reach 7~10J/cm 2, can reach 30~40J/cm for the laser of 8~10ns 2;
(5) loss is little, and grating loss is less than 2.5%.
Volume Bragg grating is optimized incident beam quality principle: to transmission-type Volume Bragg grating, and in the time that incident light departs from Bragg angle, the direct transmission of a part of light, another part light beam is diffracted.According to Fourier optical principle, the light beam of distribution is deployable is arbitrarily the stack of numerous plane wave, and plane wave propagation direction is corresponding one by one with the spatial frequency composition in light beam.Volume Bragg grating has good angle sensitivity and selectivity, in light beam, different spatial frequency composition and different angle of divergence composition are after Volume Bragg grating diffraction, it is large that the medium-high frequency composition angle of divergence departs from Bragg angle, almost can not body Bragg grating diffraction, therefore in diffracted beam, medium-high frequency composition is substantially by filtering, and the angle of divergence of light beam itself is also controlled effectively simultaneously.
Labor is as follows:
By the coupled wave theory of Kogelnik, have the diffraction efficiency of the phase-type Volume Bragg grating of absorption to be:
Wherein negative exponent item is absorption factor, C r, C ifor inclination factor.
Prague incident, so parameter Г=0; Grid line tilts, and has C r≠ C i.In formula (1),
Diffraction efficiency simplification of a formula is:
In absorption coefficient 0in very little situation, suppose have:
If ?
So,
Diffraction efficiency:
Wherein, D 0 = α 0 δ C R ; C R=cosψ, C I = k D cos ψ - k F cos φ k D ; k D = 2 πn 0 λ , k F = 2 π Λ , Each vector correlation as shown in Figure 8.
ψ is the incident angle of lighting light wave in medium, and φ is the angle of grating vector and z axle, and grating slope angle is θ 1, Bragg angle θ bb+ θ 1.
Because, φ = π 2 - θ 1 , Therefore
cos φ = cos ( π 2 - θ 1 ) = sin θ 1
C I = k D cos ψ - k F sin θ 1 k D ,
Consider that actual grating pitch angle is very little, taking 532nm body grating as example, its pitch angle is 0.03 °, if get approximate:
sinθ 1≈0,
,
Diffraction efficiency formula (3) is reduced to:
Wherein, ψ=θ b1(when the incident of definition Prague, the angle of illumination light wave vector and grating peak strength face is Bragg angle).
The constraint condition of formula (4):
Because the light beam of incident body grating meets its Bragg condition all the time, so parameter
Γ = k F cos ( φ - ψ ) - k F 2 λ 4 πn 0 = 0 ,
?
cos ( φ - ψ ) = k F λ 4 πn 0
cos ( φ - ψ ) ≈ cos ( π 2 - ψ ) = sin ψ = k F λ 4 πn 0 ⇒ sin ψ = λ 2 Λn 0 .
If do not get approximately, diffraction efficiency formula is formula (3), and the expression formula of each parameter existing explanation successively hereinbefore in formula, is now summarized as follows:
D 0 = α 0 δ C R = α 0 δ cos ψ
C R = cos ψ C I = cos ψ - k F sin θ 1 k D = cos ψ - λ sin θ 1 Λn 0
Wherein, α 0for absorption constant; δ is grating thickness, n 1for refractive index modulation degree, λ is airborne wavelength, and ψ is the incident angle of light wave in medium, and Λ is the grating cycle, θ 1for grating slope angle (with respect to z axle).Can be instructed the design of body grating structural parameters by the diffraction efficiency formula of derivation gained, to realize required diffraction bandwidth.
Fig. 2 and Fig. 3 are that angle Selection simulation drawing and the spectrum of a transmission-type Volume Bragg grating 1 is selected simulation drawing.Fig. 2 is the angle Selection simulated behavior figure of Volume Bragg grating 1 in the time that lambda1-wavelength is 532nm, incident angle and Bragg angle during without side-play amount (16.2 °) efficiency of diffraction be 97%, the FWFZ (Full Width First Zero: the first null value overall with) of angular selectivity is about 1mrad; Fig. 3 be incident angle and Bragg angle during without side-play amount (16.2 °) spectrum of Volume Bragg grating 1 select simulation drawing, in the time that incident wavelength is 532nm, efficiency of diffraction is 97%, the FWFZ of spectral selectivity is 9nm.The parameter of this Volume Bragg grating 1 is: bragg wavelength 532nm, and grating thickness 2.9mm, the grating cycle is 0.96 μ m, grating vector pitch angle is 0.03 °.
In the time only having Traditional Space filter filtering, spatial filter only can be by 2mm in light beam -1the thorough filtering of spatial frequency, it cannot be by 1mm -1spatial frequency filtering.Now the cutoff frequency of Traditional Space wave filter is about 1.9mm -1.Introduce after Volume Bragg grating 1, now can be by 1mm in light beam -1the thorough filtering of spatial frequency.Visible, the cutoff frequency of low cutoff frequency blending space wave filter is less than 1mm -1.Therefore Volume Bragg grating 1 can effectively reduce the cutoff frequency of Traditional Space wave filter, thereby obtains low cutoff frequency blending space wave filter.Traditional Space wave filter with low cutoff frequency blending space wave filter in the focal length of lens be 1000mm, hole diameter 1.0mm.
Fig. 4 and Fig. 5 are the power spectral density function curve (PSD) that in prior art and the utility model, each hot spot distributes corresponding.PSD is a kind of describing method based on Fourier transform, and what its reflected is the Fourier spectrum intensity of each frequency component, can carry out quantitative test to spectrum component.Only there iing Traditional Space wave filter to 1mm -1modulated beam of light is implemented, after filtering, still to have a large amount of 1mm in light beam -1characteristic frequency.Form after low cutoff frequency blending space wave filter but introduce Volume Bragg grating, the characteristic frequency of the 1mm-1 in light beam is by thoroughly filtering.PSD analysis result and the above results are coincide, and proving again Volume Bragg grating can effectively reduce the cutoff frequency of Traditional Space wave filter, realizes low cutoff frequency blending space wave filter.
Ginseng Figure 6 shows that the structural representation of the volume Bragg grating being formed by two orthogonal daughter grating combinations of grating grid line in present embodiment.
Ginseng table 1 and table 2 are depicted as the Frequency Power Loss rate contrast of Traditional Space wave filter and the low cutoff frequency spatial frequency of the utility model.
Table 1:
Table 2:
Experimental result shows, under identical condenser lens focal length and hole diameter condition, the introducing of Volume Bragg grating is reduced to 4.3% (hole diameter 0.5mm), 3.5% (hole diameter 0.7mm), 1.7% (hole diameter 0.9mm) by the Frequency Power Loss rate of Traditional Space wave filter from 6% (hole diameter 0.5mm), 4.5% (hole diameter 0.7mm), 3.7% (hole diameter 0.9mm).Possess better filtering characteristic, near-field beam contrast and degree of modulation all have the growth of certain amplitude simultaneously.
Low cutoff frequency laser filter of the present utility model can be realized lower cutoff frequency and Frequency Power Loss rate, greatly promotes Traditional Space filter discrimination, effectively overcomes the intrinsic defect of Traditional Space wave filter.For different target wavelength, can pass through the design of Structural Parameters of selective body Bragg grating, obtain outstanding Volume Bragg grating, realize the practical application of various low cutoff frequency blending space wave filters.
Preferably, the grating cycle of the volume Bragg grating that the present embodiment adopts is 0.96 μ m, and mean refractive index is 1.49, and refractive index modulation degree is 560ppm, and grating thickness is 2.9mm, and grating vector pitch angle is 0.03 °.
In the structural representation of the second preferred embodiment of the of the present utility model low cutoff frequency blending space wave filter shown in Fig. 7, low cutoff frequency blending space wave filter comprises the first Volume Bragg grating 1, the second Volume Bragg grating 5, the first condenser lens 2, pin hole 3 and the second condenser lens 4.The second Volume Bragg grating 5 is for incident light being carried out to the spatial filtering for the first time of X-direction, and the diffraction light of the second Volume Bragg grating 5, with the first block Bragg grating 1 described in Bragg angle incident, is realized the spatial filtering for the second time to light beam Y direction.The diffraction light incident Traditional Space wave filter (the first condenser lens 2, pin hole 3 and the second condenser lens 4) of the second Volume Bragg grating, realizes spatial filtering for the third time, completes two-dimentional low cutoff frequency spatial filter.In the present embodiment, used the second Volume Bragg grating 5, object is to realize the low cutoff frequency spatial filtering output of two dimension.The method for designing of the structural parameters of the second volume Bragg grating 5 is identical with the first preferred embodiment.
As the second preferred embodiment of low cutoff frequency blending space wave filter of the present utility model, the first Volume Bragg grating 1, the second Volume Bragg grating 5 are transmission-type grating, and the first Volume Bragg grating 1, the second Volume Bragg grating 5 are phase-type volume Bragg grating.Transmission-type grating can well be realized low cutoff frequency blending space wave filter and phase-type volume Bragg grating and can realize the modulation of a phase.
As the preferred embodiment of low cutoff frequency spatial filtering of the present utility model, the second Volume Bragg grating 5 is not prepared with common holographic material (halogenide silver photosensitive emulsion, dichromatism gel, photoresist etc.), these materials can shrink in heat treatment process, also very sensitive for humidity, can not bear high power laser light irradiation.The utility model the second Volume Bragg grating 5 used is to be prepared from taking photic temperature-sensitive refractive index (Photo-Thermo-Refractive:PTR) glass as material.PTR glass is the ideal material of preparing at present Volume Bragg grating, and its unique optical characteristics is mainly manifested in:
(1) operating wavelength range 400~2700nm, is applicable near ultraviolet near infrared various application;
(2) refractive index modulation degree can reach 1200ppm;
(3) spatial frequency 0~10000mm -1;
(4) Heat stability is good, can reach 400oC, and space distortion is less than 10 -4;
(5) surface laser damage threshold is high, reaches 32~40J/cm 2(pulsewidth 8ns), or 8~10J/cm 2(pulsewidth 1ns).
In the utility model, each embodiment has following beneficial effect compared with existing space filtering technique:
The utility model uses the good angular selectivity of Volume Bragg grating, makes the incident light of Traditional Space wave filter possess the less angle of divergence and the distribution of more uniform near-field beam;
The volume Bragg grating that transmission-type volume Bragg grating can be realized the control of the incident light angle of divergence and phase-type well can be realized the modulation of a phase;
The Volume Bragg grating Heat stability is good that adopts photic temperature-sensitive refractive index glass to prepare, the high permeability to visible ray to near-infrared band, the laser power that can carry is higher;
Adopt uniform period body grating and combined type body grating can reach better filter effect;
Daughter grating adopts the mutually orthogonal structure of grating vector to realize the low cutoff frequency spatial filtering of the two dimension of incident light, daughter grating adopts the parallel structure of grating vector to eliminate residual spatial frequency composition after the filtering of single block grating, obtains the filter effect without secondary lobe.
In sum, low cutoff frequency blending space wave filter of the present utility model has following beneficial effect:
1, adopt volume Bragg grating as angle Selection element, effectively reduce cutoff frequency and the Frequency Power Loss rate of Traditional Space wave filter;
2, adopt PTR glass as the material of preparing body grating, the laser power that can carry is higher;
3, do not change the polarization state of incident light;
4, insertion loss is low, and diffraction efficiency is high;
5, simple in structure, easily realize;
6, good stability, antijamming capability is strong.
To those skilled in the art, obviously the utility model is not limited to the details of above-mentioned example embodiment, and in the situation that not deviating from spirit of the present utility model or essential characteristic, can realize the utility model with other concrete form.Therefore, no matter from which point, all should regard embodiment as exemplary, and be nonrestrictive, scope of the present utility model is limited by claims instead of above-mentioned explanation, is therefore intended to all changes that drop in the implication and the scope that are equal to important document of claim to include in the utility model.Any Reference numeral in claim should be considered as limiting related claim.
In addition, be to be understood that, although this instructions is described according to embodiment, but be not that each embodiment only comprises an independently technical scheme, this narrating mode of instructions is only for clarity sake, those skilled in the art should make instructions as a whole, and the technical scheme in each embodiment also can, through appropriately combined, form other embodiments that it will be appreciated by those skilled in the art that.

Claims (6)

1. one kind low cutoff frequency blending space wave filter, it is characterized in that, described low cutoff frequency blending space wave filter comprises Volume Bragg grating, the first condenser lens, pin hole and the second condenser lens placed successively along light path, described Volume Bragg grating carries out Bragg diffraction to incident light, described the first condenser lens carries out Fourier transform to the diffraction light of Volume Bragg grating, light beam is converted to frequency domain from spatial domain, described pin hole is realized spatial filtering for the second time to light beam, described the second condenser lens is converted to spatial domain by light beam from frequency domain, completes spatial filtering.
2. low cutoff frequency blending space wave filter according to claim 1, it is characterized in that, described Volume Bragg grating comprises the first Volume Bragg grating and the second Volume Bragg grating, the second Volume Bragg grating carries out the spatial filtering for the first time of first direction to incident light, the first Volume Bragg grating is realized the spatial filtering for the second time that light beam is carried out to second direction, and the grating vector of described the first Volume Bragg grating and the second Volume Bragg grating is mutually orthogonal.
3. low cutoff frequency blending space wave filter according to claim 1 and 2, is characterized in that, described Volume Bragg grating is transmission-type grating, and Volume Bragg grating is phase-type Volume Bragg grating.
4. two dimension angular according to claim 1 and 2 is selected laser filter, it is characterized in that, described Volume Bragg grating is uniform period body grating.
5. two dimension angular according to claim 1 and 2 is selected laser filter, it is characterized in that, described Volume Bragg grating is two piece combined type transmission type Volume Bragg gratings.
6. two dimension angular according to claim 5 is selected laser filter, it is characterized in that, described Volume Bragg grating is formed by two orthogonal daughter grating combinations of grating grid line.
CN201320775747.5U 2013-11-29 2013-11-29 Mixed spatial filter with low cut-off frequency Expired - Fee Related CN203799129U (en)

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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103592777A (en) * 2013-11-29 2014-02-19 苏州大学 Low-cut-off frequency hybrid spatial filter
CN106501960A (en) * 2016-10-13 2017-03-15 中国科学院光电研究院 A kind of spatial filter and its fixing meanss of filtering aperture
CN107193118A (en) * 2017-07-04 2017-09-22 清华大学 Muti-spectrum imaging system and microscope

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103592777A (en) * 2013-11-29 2014-02-19 苏州大学 Low-cut-off frequency hybrid spatial filter
CN106501960A (en) * 2016-10-13 2017-03-15 中国科学院光电研究院 A kind of spatial filter and its fixing meanss of filtering aperture
CN106501960B (en) * 2016-10-13 2019-04-09 中国科学院光电研究院 A kind of spatial filter and its fixing means for filtering aperture
CN107193118A (en) * 2017-07-04 2017-09-22 清华大学 Muti-spectrum imaging system and microscope

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