Influence of the photovoltaic effect on optical limiting with lithium niobate

被引:1
|
作者
Cook, G [1 ]
Jones, DC [1 ]
Duignan, JP [1 ]
机构
[1] Def Evaluat & Res Agcy, Malvern WR14 3PS, Worcs, England
来源
LINEAR, NONLINEAR, AND POWER-LIMITING ORGANICS | 2000年 / 4106卷
关键词
photorefractives; two-beam coupling; optical limiting; lithium niobate;
D O I
10.1117/12.408518
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Fe:LiNbO3 in a simple focal plane geometry has demonstrated efficient optical limiting through two-beam coupling. The magnitude of the observed optical limiting implies an optical gain coefficient which greatly exceeds that predicted by standard photorefractive diffusion theory. Experimental measurements have confirmed that the optical gain coefficient is approximately five times grater than can be accounted for through normal charge diffusion. The photovoltaic effect has been identified as the most likely mechanism for generating the observed high optical gain. We have made a direct observation of the role of the photovoltaic effect in counter-propagating two-beam coupling in photorefractive iron doped lithium niobate. We have found experimentally that the photovoltaic effect is indeed the dominant mechanism for two beam coupling in an optical limiting geometry. The contribution to optical limiting from the photovoltaic effect is approximately five times greater than that arising from diffusion mechanisms alone, in agreement with earlier optical gain measurements.
引用
收藏
页码:311 / 317
页数:7
相关论文
共 50 条
  • [41] Neutron depth profiling study of lithium niobate optical waveguides
    Kolarova, P
    Vacik, J
    Spirkova-Hradilova, J
    Cervena, J
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1998, 141 (1-4) : 498 - 500
  • [42] Design of Flat Optical Frequency Comb Based on Lithium Niobate Optical Waveguide
    Liu Y.
    Deng Y.
    Wei H.
    Wu C.
    Feng S.
    Zhongguo Jiguang/Chinese Journal of Lasers, 2021, 48 (13):
  • [43] Complex study of the structural and optical homogeneity of lithium niobate crystals
    N. V. Sidorov
    M. N. Palatnikov
    A. A. Yanichev
    A. A. Gabain
    O. V. Makarova
    O. Yu. Pikul’
    Crystallography Reports, 2014, 59 : 724 - 731
  • [44] Design and qualification of hermetically packaged lithium niobate optical modulator
    Moyer, RS
    Grencavich, R
    Judd, FF
    Kershner, RC
    Minford, WJ
    Smith, RW
    IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY PART B-ADVANCED PACKAGING, 1998, 21 (02): : 130 - 135
  • [45] Influence of gas phase composition on the defects formation in lithium niobate
    M. Tsirlin
    Journal of Materials Science, 2004, 39 : 3187 - 3189
  • [46] Boron Influence on Defect Structure and Properties of Lithium Niobate Crystals
    Sidorov, Nikolay V.
    Teplyakova, Natalia A.
    Makarova, Olga V.
    Palatnikov, Mikhail N.
    Titov, Roman A.
    Manukovskaya, Diana V.
    Birukova, Irina V.
    CRYSTALS, 2021, 11 (05)
  • [47] Effect of pre-annealing of lithium niobate on the structure and optical characteristics of proton-exchanged waveguides
    Sosunov, Aleksei
    Ponomarev, Roman
    Semenova, Oksana
    Petukhov, Igor
    Volyntsev, Anatoly
    OPTICAL MATERIALS, 2019, 88 : 176 - 180
  • [48] Volume Transmission Holograms in Lithium Niobate Crystals with Surface Copper Doping for Photovoltaic Tweezers
    Anisimov, R. I.
    Temereva, A. S.
    Kolmakov, A. A.
    Shandarov, S. M.
    OPTICS AND SPECTROSCOPY, 2024, 132 (02) : 86 - 94
  • [49] Effect of point defects on Curie temperature of lithium niobate
    Koyama, Chihiro
    Nozawa, Jun
    Fujiwara, Kozo
    Uda, Satoshi
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2017, 100 (03) : 1118 - 1124
  • [50] Dark photovoltaic spatial solitons in a planar waveguide obtained by proton implantation in lithium niobate
    Kruglov, V. G.
    Shandarov, V. M.
    Tan, Yang
    Chen, Feng
    Kip, D.
    QUANTUM ELECTRONICS, 2008, 38 (11) : 1045 - 1047