Optical beam tracking and distortion compensation based on a nonlinear lens mechanism

被引:4
|
作者
Koujelev, Alexander S. [1 ]
Dudelzak, Alexander E. [1 ]
机构
[1] Canadian Space Agcy, Longueuil, PQ J3Y 8Y9, Canada
关键词
free-space laser communications; optical tracking; wavefront distortion compensation; nonlinear optical devices; self-focusing; liquid crystals;
D O I
10.1117/1.2968236
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Optical free-space communications involving moving parties require precise beam pointing and mutual tracking of communicating transceivers. The existing variety of tracking techniques is still the major limiting factor in free-space laser communications. Here we propose a technique for optical beam tracking that utilizes nonlinear optical properties of materials. In our proof-of-concept experiment, a thin layer of a nematic liquid crystal (NLC) with high thermal nonlinearity was used to produce a thermal lens induced by the incoming optical beam. That beam modulated the NLC refractive index. As the transmitted optical beam passed through the same layer, the beam intensity was modulated in the far field. A sharp intensity maximum was formed at the distant communicating party position. This tracking capability has been demonstrated for angular disturbances at a subkilohertz frequency. This tracking mechanism also offers adaptive capability of compensation of strong aberrations. Such compensation has been demonstrated experimentally; numerical modeling performed with the Fresnel integral technique showed very good agreement with the experiment. (C) 2008 Goverment of Canada.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Optical beam tracking based on a nonlinear lens mechanism
    Koujelev, Alexander S.
    Dudelzak, Alexander E.
    ATMOSPHERIC OPTICS: MODELS, MEASUREMENTS, AND TARGET-IN-THE LOOP PROPAGATION, 2007, 6708
  • [2] Compensation for nonlinear distortion of optical transmitter with predistortion
    Wang, H
    Chen, DH
    Lu, YS
    Zhu, B
    Yang, XL
    INTERNATIONAL JOURNAL OF INFRARED AND MILLIMETER WAVES, 1999, 20 (09): : 1663 - 1672
  • [3] Compensation for Nonlinear Distortion of Optical Transmitter with Predistortion
    Hui Wang
    Dehua Chen
    Yusheng Lu
    Bo Zhu
    Xianglin Yang
    International Journal of Infrared and Millimeter Waves, 1999, 20 : 1663 - 1672
  • [4] Compensation of optical system distortion and image perspective deformations for the projection lens
    Burtseva, Anastasiia A.
    Ezhova, Kseniia V.
    Trifonov, Oleg V.
    OPTICAL MEASUREMENT SYSTEMS FOR INDUSTRIAL INSPECTION X, 2017, 10329
  • [5] Blind Iterative Nonlinear Distortion Compensation Based on Thresholding
    Azghani, Masoumeh
    Ghorbani, Amirata
    Marvasti, Farokh
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS II-EXPRESS BRIEFS, 2017, 64 (07) : 852 - 856
  • [6] Digital Nonlinear Distortion Compensation
    Tao, Zhenning
    Dou, Liang
    Zhao, Ying
    Liu, Bo
    Li, Lei
    Oyama, Tomofumi
    Hoshida, Takeshi
    Rasmussen, Jens C.
    2016 21ST OPTOELECTRONICS AND COMMUNICATIONS CONFERENCE (OECC) HELD JOINTLY WITH 2016 INTERNATIONAL CONFERENCE ON PHOTONICS IN SWITCHING (PS), 2016,
  • [7] COMPENSATION FOR ATMOSPHERIC DEGRADATION OF OPTICAL BEAM TRANSMISSION BY NONLINEAR OPTICAL MIXING
    YARIV, A
    OPTICS COMMUNICATIONS, 1977, 21 (01) : 49 - 50
  • [8] Distortion compensation of nonlinear systems based on indirect learning architecture
    Abd-Elrady, Emad
    Gan, Li
    Kubin, Gernot
    2008 3RD INTERNATIONAL SYMPOSIUM ON COMMUNICATIONS, CONTROL AND SIGNAL PROCESSING, VOLS 1-3, 2008, : 184 - 187
  • [9] A compensation method based on recursive processing of Nonlinear distortion for OFDM
    Hosono, H
    Hosokawa, T
    Maeda, T
    Maehara, F
    Takahata, F
    ELECTRONICS AND COMMUNICATIONS IN JAPAN PART I-COMMUNICATIONS, 2004, 87 (07): : 55 - 65
  • [10] Receiver based compensation of nonlinear distortion in MIMO-OFDM
    Drotar, P.
    Gazda, J.
    Deumal, M.
    Galajda, P.
    Kocur, D.
    2010 IEEE INTERNATIONAL MICROWAVE WORKSHOP SERIES ON RF FRONT-ENDS FOR SOFTWARE DEFINED AND COGNITIVE RADIO SOLUTIONS (IMWS 2010), 2010,