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
  • [31] Theoretical consideration of nonlinear compensation method for minimizing high-order intermodulation distortion nonlinear compensation in a direct optical FM RoF system
    Murakoshi, A
    Tsukamoto, K
    Komaki, S
    IEICE TRANSACTIONS ON ELECTRONICS, 2003, E86C (07): : 1167 - 1174
  • [32] Optically tunable compensation of nonlinear signal distortion in optical fiber by end-span optical phase conjugation
    Pelusi, Mark D.
    Eggleton, Benjamin J.
    OPTICS EXPRESS, 2012, 20 (07): : 8015 - 8023
  • [33] Quasi-optical frequency selective surface with phase compensation structure correcting the beam distortion
    Yao, Xiayuan
    Liang, Bingyuan
    Bai, Ming
    OPTICS EXPRESS, 2017, 25 (19): : 23014 - 23023
  • [34] On Adiabatic Chirp and Compensation for Nonlinear Distortion in DML-Based OFDM Transmission
    Wei, Chia-Chien
    Cheng, Hsuan-Lin
    Huang, Wei-Xiang
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2018, 36 (16) : 3502 - 3513
  • [35] Predistorter based on frequency domain estimation for compensation of nonlinear distortion in OFDM systems
    Chiu, Mao-Ching
    Zeng, Chih-Hsiu
    Liu, Meng-Che
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2008, 57 (02) : 882 - 892
  • [36] An adaptive predistortion method based on orthogonal polynomial expansion for nonlinear distortion compensation
    Ohmori, Seiji
    Xu Guangsheng
    Muta, Osamu
    Akaiwa, Yoshihiko
    2007 IEEE 18TH INTERNATIONAL SYMPOSIUM ON PERSONAL, INDOOR AND MOBILE RADIO COMMUNICATIONS, VOLS 1-9, 2007, : 3001 - 3005
  • [37] Compensation for Nonlinear Distortion of the Frequency Modulation-Based Parametric Array Loudspeaker
    Hatano, Yuta
    Shi, Chuang
    Kajikawa, Yoshinobu
    IEEE-ACM TRANSACTIONS ON AUDIO SPEECH AND LANGUAGE PROCESSING, 2017, 25 (08) : 1709 - 1717
  • [38] Nonlinear Distortion in SPAD-Based Optical OFDM Systems
    Li, Yichen
    Safari, Majid
    Henderson, Robert
    Haas, Harald
    2015 IEEE GLOBECOM WORKSHOPS (GC WKSHPS), 2015,
  • [39] Combatting nonlinear distortion in optical fibre transmission systems by optimum dispersion compensation and modulation format
    Royset, A
    Hjelme, DR
    JOURNAL OF NONLINEAR OPTICAL PHYSICS & MATERIALS, 2000, 9 (02): : 227 - 234
  • [40] Size of an artificial neural-network for simultaneous compensation of linear and nonlinear optical waveform distortion
    Nakamura, Moriya
    Fukumoto, Yuta
    Owaki, Syotaro
    IEICE COMMUNICATIONS EXPRESS, 2019, 8 (07): : 269 - 274