液晶与显示, 2018, 33 (9): 764, 网络出版: 2018-12-18   

基于液晶空间光调制器的变倍率激光扩束技术研究

Laser beam expanding technology based on liquid crystal spatial light modulator
作者单位
1 中国航空工业集团公司 洛阳电光设备研究所,河南 洛阳 471023
2 长春理工大学 空间光电技术研究所,吉林 长春 130022
摘要
由于激光器发出的光束通常在毫米量级,然而在激光测距、激光通信、激光全息等领域中需要较宽的光束,因此需要对激光束进行准直扩束。本文提供了一种基于LC-SLM的变倍率激光扩束方法,利用LC-SLM产生透镜的波阵面。由计算机数值模拟出焦距不同的变焦透镜相位调制图,将其加载到LC-SLM上,利用焦距不同的变焦透镜相位调制图的灰度信号来控制LC-SLM外加电压变化,实现了基于LC-SLM的变焦透镜功能。根据伽利略望远镜形式的扩束系统,本文利用LC-SLM的变焦透镜功能与匹配透镜配合,搭建了基于LC-SLM的变倍率激光扩束系统,实现对激光束的变倍扩束。实验结果表明,该系统实现了2×~10×连续变倍率激光扩束。系统结构简单、精度高、响应速度快,具有很大的实用价值。
Abstract
It needs a wider beam in laser ranging, laser communication, laser holography and so on,but the laser beam is in the millimeter scale, therefore, collimating and expanding the beam of the laser beam is needed. This article provides a variable-rate laser beam expanding method based on LC-SLM. Using LC-SLM to produce the wavefront of a lens,The phase modulation graph of the zoom lens with different focal length is simulated by the computer. It is loaded on the LC-SLM, and the change of the LC-SLM applied voltage is controlled by the gray signal of the phase modulation graph of the zoom lens with different focal length. The function of the zoom lens based on the LC-SLM is realized. According to the beam expansion system of Galileo telescope, in this paper, a variable rate laser beam expansion system based on LC-SLM is built by using the function of the zoom lens of LC-SLM and the matched lens to achieve the multiplex beam expansion of the laser beam. Experimental results show that the system realizes continuous variable rate laser beam expanding at 2×~10×. The system has simple structure, high accuracy and fast response speed, and has great practical value. It is of great practical value.
参考文献

[1] 周炳琨,高以智,陈倜嵘,等.激光原理[M].6版.北京:国防工业出版社,2009:79-83.

    ZHOU B K, GAO Y Z, CHEN C R, et al. Laser Principle [M]. 6th ed. Beijing: National Defense Industry Press, 2009: 79-83. (in Chinese)

[2] 李晓彤.几何光学和光学设计[M].杭州:浙江大学出版社,1997:142.

    LI X T. Geometric Optics and Optical Design [M]. Hangzhou: Zhejiang University Press, 1997: 142. (in Chinese)

[3] 齐光,王书新,李景林.空间遥感器高体份SiC/Al复合材料反射镜组件设计[J].中国光学,2015,8(1):99-106.

    QI G, WANG S X, LI J L. Design of high volume fraction SiC/Al composite mirror in space remote sensor [J]. Chinese Optics, 2015, 8(1): 99-106. (in Chinese)

[4] KUIPER S, HENDRIKS B H W. Variable-focus liquid lens for miniature cameras [J]. Applied Physics Letters, 2004, 85(7): 1128-1130.

[5] 张鹰.基于液体透镜的变焦距光学系统研究[D].长春:中国科学院研究生院(长春光学精密机械与物理研究所),2012.

    ZHANG Y. Research on zoom lens design with liquid lenses [D]. Changchun: Graduate School of the Chinese Academy of Sciences, 2012. (in Chinese)

[6] FANG C L, DAI B, ZHUO R, et al. Focal-length-tunable elastomer-based liquid-filled plano-convex mini lens [J]. Optics Letters, 2016, 41(2): 404-407.

[7] MARTINEZ T, SANTIAGO F, WICK D V, et al. Active optical zoom for tracking. Advanced Maui optical and space surveillance technologies conference [C]//RYAN S. The Maui Economic Development Board. Wailea, Maui, Hawaii, 2008: E12.

[8] IEMMI C, CAMPOS J. Anamorphic zoom system based on liquid crystal displays [J]. Journal European Optical Society Rapid Publications, 2009, 4(4): 38-42.

[9] CHEN C W, CHO M, HUANG YP, et al. Three-dimensional imaging with axially distributed sensing using electronically controlled liquid crystal lens [J]. Optics Letters, 2012, 37(19): 4125-4127.

[10] 杨兰,王敏帅,徐恭勤,等.低电压驱动液晶变焦透镜的设计与优化[J].光学学报,2017,37(9):0922003.

    YANG L, WANG M S, XU G Q, et al. Design and optimization of low voltage driving variable focal length liquid crystal lens [J]. Acta Optica Sinica, 2017, 37(9): 0922003. (in Chinese)

[11] 曹召良,李小平,宣丽,等.液晶自适应光学的研究进展[J].中国光学,2012,5(1):12-19.

    CAO Z L, LI X P, XUAN L, et al. Recent progress in liquid crystal adaptive optical techniques [J]. Chinese Optics, 2012, 5(1): 12-19. (in Chinese)

[12] 金国藩,李景镇.激光测量学[M].北京:科学出版社,1998:168-169.

    JIN G P, LI J Z. Laser Surveying [M]. Beijing: Science Press, 1998: 168-169. (in Chinese)

[13] 刘春梅.基于LCOS光学变焦系统研究[D].合肥:安徽大学,2013:1-29.

    LIU C M. LCOS-based optical zoom system research [D]. Hefei: Anhui University, 2013: 1-29. (in Chinese)

[14] 赫尔齐克H P.微光学元件、系统和应用[M].周海宪,译.北京:国防工业出版社,2002:5.

    ZHOU H X H P. Microoptics Components, Systems and Applications [M]. ZHOU H X, trans. Beijing: National Defense Industry Press, 2002: 5. (in Chinese)

[15] REICHERTER M, HAIST T, WAGEMANN E U, et al. Optical particle trapping with computer-generated holograms written on a liquid-crystal display [J]. Optics Letters, 1999, 24(9): 608-610.

[16] ZWICK S, SCHAUB C, HAIST T, et al. Light fields with an axially expanded intensity distribution for stable three-dimensional optical trapping [J]. Optics Express, 2010, 18(19): 19941-19950.

李颖奎, 齐冀, 张洁, 倪小龙, 刘智, 杨阳. 基于液晶空间光调制器的变倍率激光扩束技术研究[J]. 液晶与显示, 2018, 33(9): 764. LI Ying-kui, QI Ji, ZHANG Jie, NI Xiao-long, LIU Zhi, YANG Yang. Laser beam expanding technology based on liquid crystal spatial light modulator[J]. Chinese Journal of Liquid Crystals and Displays, 2018, 33(9): 764.

本文已被 5 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!