Modeling of pulsed K diode pumped alkali laser: Analysis of the experimental results

被引:18
|
作者
Auslender, Ilya [1 ]
Barmashenko, Boris [1 ]
Rosenwaks, Salman [1 ]
Zhdanov, Boris [2 ]
Rotondaro, Matthew [2 ]
Knize, Randall J. [2 ]
机构
[1] Ben Gurion Univ Negev, Dept Phys, IL-84105 Beer Sheva, Israel
[2] US Air Force Acad, Laser & Opt Res Ctr, Usaf Acad, CO 80840 USA
来源
OPTICS EXPRESS | 2015年 / 23卷 / 16期
关键词
D O I
10.1364/OE.23.020986
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
A simple optical model of K DPAL, where Gaussian spatial shapes of the pump and laser intensities in any cross section of the beams are assumed, is reported. The model, applied to the recently reported highly efficient static, pulsed K DPAL [Zhdanov et al, Optics Express 22, 17266 (2014)], shows good agreement between the calculated and measured dependence of the laser power on the incident pump power. In particular, the model reproduces the observed threshold pump power, 22 W (corresponding to pump intensity of 4 kW/cm(2)), which is much higher than that predicted by the standard semi-analytical models of the DPAL. The reason for the large values of the threshold power is that the volume occupied by the excited K atoms contributing to the spontaneous emission is much larger than the volumes of the pump and laser beams in the laser cell, resulting in very large energy losses due to the spontaneous emission. To reduce the adverse effect of the high threshold power, high pump power is needed, and therefore gas flow with high gas velocity to avoid heating the gas has to be applied. Thus, for obtaining high power, highly efficient K DPAL, subsonic or supersonic flowing-gas device is needed. (C) 2015 Optical Society of America
引用
收藏
页码:20986 / 20996
页数:11
相关论文
共 50 条
  • [11] Analysis of Thermal Effects in Laser Rod Pumped by Repetitively Pulsed Laser Diode Array
    DAI Qin1
    2. Department of Mathematics & Physics
    3. College of Material and Engineering
    4. Changchun Institute of Optics
    Semiconductor Photonics and Technology, 2007, (04) : 283 - 288
  • [12] Experimental study of the Cs diode pumped alkali laser operation with different buffer gases
    Knize, Randall J.
    Zhdanov, Boris V.
    Rotondaro, Matthew D.
    Shaffer, Michael K.
    OPTICAL ENGINEERING, 2016, 55 (03)
  • [13] Influence of spectrum characteristics on diode pumped alkali laser
    Yang Z.
    Wang H.
    Lu Q.
    Li Y.
    Xu X.
    Qiangjiguang Yu Lizishu/High Power Laser and Particle Beams, 2010, 22 (10): : 2257 - 2262
  • [14] Diode pumped alkali laser: current status and prospects
    Masamori Endo
    Hiroki Nagaoka
    Fumio Wani
    Optical and Quantum Electronics, 2022, 54
  • [15] Scalable pump source for diode pumped alkali laser
    Hersman, F. W.
    Distelbrink, J. H.
    Ketel, J.
    Sargent, D.
    Watt, D. W.
    HIGH ENERGY/AVERAGE POWER LASERS AND INTENSE BEAM APPLICATIONS VII, 2014, 8962
  • [16] Diode pumped alkali laser: current status and prospects
    Endo, Masamori
    Nagaoka, Hiroki
    Wani, Fumio
    OPTICAL AND QUANTUM ELECTRONICS, 2022, 54 (06)
  • [17] Review on diode-pumped alkali vapor laser
    Gao, F.
    Chen, F.
    Xie, J. J.
    Li, D. J.
    Zhang, L. M.
    Yang, G. L.
    Guo, J.
    Guo, L. H.
    OPTIK, 2013, 124 (20): : 4353 - 4358
  • [18] Experimental investigation of a pulsed Rb-Ar excimer-pumped alkali laser
    Cheng, Hongling
    Wang, Zhimin
    Zhang, Fengfeng
    Wang, Mingqiang
    Tian, Zhaoshuo
    Peng, Qinjun
    Cui, Dafu
    Xu, Zuyan
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2017, 56 (03) : 1 - +
  • [19] EXPERIMENTAL-ANALYSIS AND THEORETICAL MODELING OF A DIODE-PUMPED ER-YBGLASS MICROCHIP LASER
    TACCHEO, S
    LAPORTA, P
    LONGHI, S
    SVELTO, C
    OPTICS LETTERS, 1995, 20 (08) : 889 - 891
  • [20] Modeling of diode pumped nanoparticle gas laser
    Yang, Xu
    Wang, Hongyan
    Yang, Zining
    Xu, Xiaojun
    FOURTH INTERNATIONAL SYMPOSIUM ON LASER INTERACTION WITH MATTER, 2017, 10173