Path toward a high energy solid-state laser

被引:2
|
作者
Wood, GL [1 ]
Merkle, LD [1 ]
Dubinskii, M [1 ]
Zandi, B [1 ]
机构
[1] USA, Res Lab, Adelphi, MD 20783 USA
来源
A CRITICAL REVIEW: LASER TECHNOLOGIES FOR DEFENSE AND SECURITY | 2004年 / 5414卷
关键词
D O I
10.1117/12.554439
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Lasers have come a long way since the first demonstration by Maiman of a ruby crystal laser in 1960. Lasers are used as scientific tools as well as for a wide variety of applications for both commercial industry and the military. Today lasers come in all types, shapes and sizes depending on their application. The solid-state laser has some distinct advantages in that it can be rugged, compact, and self contained, making it reliable over long periods of time. With the advent of diode laser pumping a ten times increase in overall laser efficiency has been realized. This significant event, and others, is changing the way solid-state lasers are applied and allows new possibilities. One of those new areas of exploration is the high energy laser. Solid-state lasers for welding are already developed and yield energies in the 0.5 to 6 kilojoule range. These lasers are at the forefront of what is possible in terms of high energy solid-state lasers. It is possible to achieve energies of greater than 100 kJ. These sorts of energies would allow applications, in addition to welding, such as directed energy weapons, extremely remote sensing, power transfer, propulsion, biological and chemical agent neutralization and unexploded and mine neutralization. This article will review these new advances in solid-state lasers and the different paths toward achieving a high energy laser. The advantages and challenges of each approach will be highlighted.
引用
收藏
页码:69 / 84
页数:16
相关论文
共 50 条
  • [21] Characterization of diode-laser stacks for High-Energy-Class Solid-State Lasers
    Pilar, Jan
    Sikocinski, Pawel
    Pranowicz, Alina
    Divoky, Martin
    Crump, P.
    Staske, R.
    Lucianetti, Antonio
    Mocek, Tomas
    HIGH-POWER DIODE LASER TECHNOLOGY AND APPLICATIONS XII, 2014, 8965
  • [22] High-Density Solid-State Storage: A Long Path to Success
    Lacaita, Andrea L.
    Spinelli, Alessandro S.
    Compagnoni, Christian Monzio
    2021 IEEE LATIN AMERICA ELECTRON DEVICES CONFERENCE (LAEDC), 2021,
  • [23] High Energy Diode-Pumped Rep-Rated Nanosecond Solid-State Laser
    Fu Xing
    Liu Tinghao
    Lei Xinxing
    Gong Mali
    Liu Qiang
    CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2021, 48 (15):
  • [24] The state of solid-state batteries Planar Energy's solid-state cells
    Faris, Scott
    AMERICAN CERAMIC SOCIETY BULLETIN, 2012, 91 (02): : 32 - 32
  • [25] Solid-state disk laser for high-average power
    Vetrovec, J
    Koumvakalis, A
    Shah, R
    XIV INTERNATIONAL SYMPOSIUM ON GAS FLOW, CHEMICAL LASERS, AND HIGH-POWER LASERS, 2003, 5120 : 731 - 734
  • [26] Editorial: Advanced high power solid-state laser technology
    Tao, Rumao
    Antipov, Oleg
    Ma, Pengfei
    Ma, Haotong
    FRONTIERS IN PHYSICS, 2023, 11
  • [27] Cooling technology for high-power solid-state laser
    Tian, Changqing
    Xu, Hongbo
    Cao, Hongzhang
    Si, Chunqiang
    Zhongguo Jiguang/Chinese Journal of Lasers, 2009, 36 (07): : 1686 - 1692
  • [28] High-power solid-state cw dye laser
    Bornemann, R.
    Thiel, E.
    Bolivar, P. Haring
    OPTICS EXPRESS, 2011, 19 (27): : 26382 - 26393
  • [29] High gain LD pumped solid-state laser amplifier
    Lu, Fei
    Gong, Mali
    Jin, Guofan
    Liu, Xingzhan
    Jiguang Yu Hongwai/Laser and Infrared, 2000, 30 (04): : 226 - 228
  • [30] HIGH-EFFICIENCY NANOSECOND MINIATURE SOLID-STATE LASER
    KHURGIN, J
    ZWICKER, WK
    APPLIED OPTICS, 1985, 24 (21): : 3565 - 3569