Dynamic optical transfer function of an acoustooptic modulator with a damped sound wave

被引:0
|
作者
A. S. Zadorin
机构
[1] Tomsk State University of Control Systems and Electronic Engineering,
来源
Optics and Spectroscopy | 2000年 / 88卷
关键词
Spatial Dependence; Acoustic Signal; Transient Process; Pump Beam; Sound Signal;
D O I
暂无
中图分类号
学科分类号
摘要
Based on a spatially dependent dynamic optical transfer function of an acoustooptic modulator, a dynamic model of light modulation by a sound signal under conditions of acoustic damping is developed. A system of equations describing the dynamics of the acoustooptic interaction is given. Solutions of this equation for arbitrary power level and spatial-time structure of a sound signal are found. It is shown that acoustooptic damping has the strongest effect in a nonlinear modulation regime. Here, the dissipation of an acoustic signal suppresses the higher harmonic of the dynamic optical transfer function. An analytical model of the dynamic optical transfer function for a low level of acoustooptic coupling is given. It is shown that when the pump beam aperture is much greater than the spatial size of an acoustic signal, the time response of the acoustooptic modulator response is identical within a phase factor to the amplitude profile of a pump beam apodized by the exponential dependence of the amplitude of a damped sound wave. Otherwise, the sound damping produces almost no distortions of a plane top of the acoustooptic modulator response to a pulsed signal and shows itself only under phase mismatch conditions. Here, the asymmetry of overshoots at the edges of the acoustooptic modulator response is observed. Calculated plots are presented, which illustrate the aforementioned specific features of the transient process under conditions of acoustic damping in the acoustooptic interaction in paratellurite.
引用
收藏
页码:623 / 629
页数:6
相关论文
共 50 条
  • [31] Development of a wide dynamic ranged radio wave receiving system with an optical modulator and DFB laser
    Toba, Y
    Onizawa, M
    Haeiwa, K
    Yamashita, T
    Ozaki, Y
    ELECTRONICS AND COMMUNICATIONS IN JAPAN PART II-ELECTRONICS, 2005, 88 (09): : 29 - 37
  • [32] Correlation Analysis of Air Transfer and Sound Wave Transfer
    Iordache, Vlad
    Gavrila, Camelia
    Catalina, Tiberiu
    Iordache, Florin
    Zaharia, Marta
    Alexe, Ioana
    Ene, Ciprian
    ROMANIAN JOURNAL OF ACOUSTICS AND VIBRATION, 2019, 16 (01): : 84 - 90
  • [33] A Modified Test Function Method for Damped Wave Equations
    D'Abbicco, Marcell
    Lucente, Sandra
    ADVANCED NONLINEAR STUDIES, 2013, 13 (04) : 867 - 892
  • [34] DETACHABLE 400-MHZ ACOUSTOOPTIC PHASE MODULATOR FOR A SINGLE-MODE OPTICAL FIBER
    PATTERSON, DB
    GODIL, AA
    KINO, GS
    KHURIYAKUB, BT
    OPTICS LETTERS, 1989, 14 (04) : 248 - 250
  • [35] Optical response of an all-fibre acoustooptic phase modulator using aluminium nitride coating
    Bhatti, A
    Al-Raweshidy, HS
    Murtaza, G
    OPTICS COMMUNICATIONS, 2000, 176 (4-6) : 355 - 363
  • [36] SOUND WAVE HOLOGRAM AND OPTICAL RECONSTRUCTION
    AOKI, Y
    YOSHIDA, N
    TSUKAMOTO, N
    SUZUKI, M
    PROCEEDINGS OF THE INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS, 1967, 55 (09): : 1622 - +
  • [37] WAVE ABBERATIONS AND OPTICAL TRANSFER FUNCTION OF A PHOTOGRAPHIC OBJECTIVE OUTSIDE AXIS
    SUNDERPLASSMANN, FA
    OPTIK, 1967, 26 (03): : 284 - +
  • [38] High dynamic range analog optical modulator
    Young, P
    Bechtel, JH
    RADIO FREQUENCY PHOTONIC DEVICES AND SYSTEMS, 2000, 4112 : 20 - 27
  • [39] Surface-Acoustic-Wave-Driven Acoustooptic Modulator with Wide Wavelength Range for Visible Laser Light
    Kakio, Shoji
    Shinkai, Susumu
    Kawate, Hiroyuki
    Nakagawa, Yasuhiko
    2008 JOINT CONFERENCE OF THE OPTO-ELECTRONICS AND COMMUNICATIONS CONFERENCE AND THE AUSTRALIAN CONFERENCE ON OPTICAL FIBRE TECHNOLOGY, VOLS 1 AND 2, 2008, : 552 - 553
  • [40] NUMERICAL-ANALYSIS OF THE MODULATION TRANSFER-FUNCTION OF A POCKELS READOUT OPTICAL MODULATOR DEVICE
    CHEN, J
    MINEMOTO, T
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1989, 6 (09): : 1281 - 1291