Propagation theory and numerical simulation of high-power optical pulse in laser amplifying medium

被引:0
|
作者
Xiaohong Zhou
Li Wang
Xiaorong Gao
Zeyong Wang
Bin Luo
Feng Jing
机构
[1] Southwest Jiaotong University,School of Physical Science and Technology
[2] Southwest Jiaotong University,School of Information Science and Technology
[3] Research Center of Laser Fusion,undefined
[4] CA EP,undefined
关键词
High-power optical pulse; Laser amplifying medium; Kerr effect; Gain saturation; Frequency chirp;
D O I
10.1007/s12596-012-0060-6
中图分类号
学科分类号
摘要
Taking into account the nonlinear effect, dispersion, gain distribution and loss of amplifying medium of a laser amplifier, the physical model that depicts the propagation characteristics of an optical pulse in the medium is established. In the example of Ti:sapphire amplifying medium, split-step Fourier transform method is used to solve the model numerically. The frequency chirp produced by Kerr effect is analyzed and the influences of gain saturation, group velocity dispersion and Kerr effect on the optical pulse are discussed in detail. The results indicate that the gain saturation of amplifying medium introduces the optical pulse distortion. Group velocity dispersion does not affect the pulse propagation characteristics. Kerr effect produces a frequency chirp and the gain saturation brings a larger frequency chirp at the front edge than that at the lagging edge of the pulse. It is the combined action of Kerr effect and gain saturation that makes the peak of the pulse spectrum shift to low frequency region, thus losing the symmetry of its initial profile. Therefore, in high-power laser amplification system, gain saturation and nonlinear effect are main factors that cause deformation of optical pulse, so they have to be considered seriously.
引用
收藏
页码:33 / 40
页数:7
相关论文
共 50 条
  • [31] Characteristics of filaments at high-power femtosecond laser radiation propagation in air and water: II. Numerical simulation
    Geints Y.E.
    Zemlyanov A.A.
    Atmospheric and Oceanic Optics, 2011, 24 (2) : 152 - 155
  • [32] Numerical simulation on the damage behaviors of optical mirrors induced by film defects in high-power CW laser
    Luo, Xinyu
    Yang, Peng
    Li, Qian
    Zhen, Jiapeng
    Qiu, Jing
    Liu, Guanjun
    OPTICAL REVIEW, 2024, 31 (01) : 94 - 107
  • [33] Numerical simulation on the damage behaviors of optical mirrors induced by film defects in high-power CW laser
    Xinyu Luo
    Peng Yang
    Qian Li
    Jiapeng Zhen
    Jing Qiu
    Guanjun Liu
    Optical Review, 2024, 31 : 94 - 107
  • [34] PROPAGATION OF AN AMPLIFYING PULSE IN A 2-LEVEL MEDIUM
    ZAKHAROV, VE
    JETP LETTERS, 1980, 32 (10) : 589 - 593
  • [35] PROPAGATION OF A LIGHT PULSE IN A NONLINEARLY AMPLIFYING AND ABSORBING MEDIUM
    AMBARTSUMYAN, RV
    BASOV, NG
    ZUEV, VS
    KRYUKOV, PG
    LETOKHOV, VS
    JETP LETTERS-USSR, 1966, 4 (01): : 12 - +
  • [36] PROPAGATION OF A LIGHT PULSE IN A RESONANTLY AMPLIFYING (ABSORBING) MEDIUM
    KRYUKOV, PG
    LETOKHOV, VS
    SOVIET PHYSICS USPEKHI-USSR, 1970, 12 (05): : 641 - +
  • [37] Miro: Complete modeling and software for pulse amplification and propagation in high-power laser systems
    Morice, O
    OPTICAL ENGINEERING, 2003, 42 (06) : 1530 - 1541
  • [38] Resonant increasing of high-power laser field in nodule defects in multilayer optical coatings: theory and simulation
    Gruzdev, VE
    Gruzdeva, AS
    NONLINEAR OPTICAL ENGINEERING, 1998, 3263 : 169 - 176
  • [39] HIGH-POWER LASER PROPAGATION - THERMAL BLOOMING
    SMITH, DC
    PROCEEDINGS OF THE IEEE, 1977, 65 (12) : 1679 - 1714
  • [40] Nonlinear-optical transformation of a high-power femtosecond laser pulse in air
    Kandidov, VP
    Kosareva, OG
    Koltun, AA
    QUANTUM ELECTRONICS, 2003, 33 (01) : 69 - 75