Optical transmission processes in a thermally driven protected multi-component device

被引:0
|
作者
Kowalski, GJ [1 ]
Hoke, L [1 ]
Colanto, D [1 ]
Nakashima, M [1 ]
DeCristofano, B [1 ]
机构
[1] Northeastern Univ, Dept Mech Ind & Mfg Engn, Boston, MA 02215 USA
关键词
beam propagation; thermal defocussing; laser-induced damage; numerical simulation; thermally stimulated nonlinear effects;
D O I
10.1117/12.452721
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A strategy for protecting and improving the performance of a nonlinear optical device exposed to a high-energy beam is numerically investigated. In this strategy, a thermally stimulated defocusing material is used in combination with a RSA material. To test this new approach, the ability of a CS2 cell dyed with a linear absorber material to protect a NLO device is deter-mined using calculated values of beam and aperture transmission and the temperature distribution in the NLO device. The results demonstrate that the strategy provides thermal protection and marginally reduces the aperture transmission. These current calculations suggests that other approaches, such as multi-cell devices, may be more effective at providing thermal protection and reducing beam transmission. However, this current approach needs further investigation at other linear transmissions and in addition might be combined with other approaches, such as multiple layers to provide enhanced protection.
引用
收藏
页码:65 / 74
页数:6
相关论文
共 50 条
  • [21] HYDRATION AS CAUSE FOR COUPLING OF TRANSPORT PROCESSES IN MULTI-COMPONENT SYSTEMS
    SCHONERT, H
    ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE-FRANKFURT, 1968, 62 (1-4): : 50 - &
  • [22] Multi-component optical azimuthons of four-wave mixing
    Wang Rui-Min
    Wang Xing-Peng
    Wu Zhen-Kun
    Yao Xin
    Zhang Yi-Qi
    Zhang Yan-Peng
    CHINESE PHYSICS B, 2014, 23 (05)
  • [23] Multi-component nanocomposite for all-optical switching applications
    Zhang, Yingbo
    Hu, Xiaoyong
    Yang, Hong
    Gong, Qihuang
    APPLIED PHYSICS LETTERS, 2011, 99 (14)
  • [24] Optical properties of pure and multi-component organic aerosols.
    Niedziela, RF
    Pontee, C
    Kapala, MK
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 228 : U285 - U285
  • [25] Multi-component optical azimuthons of four-wave mixing
    王瑞敏
    王兴鹏
    吴振坤
    姚鑫
    张贻齐
    张彦鹏
    Chinese Physics B, 2014, 23 (05) : 320 - 326
  • [26] Design for Test and Manufacture of Complex Multi-Component Optical Instruments
    Rolt, Stephen
    Dubbeldam, C. Marc
    Robertson, David J.
    Ryder, David A.
    OPTICAL FABRICATION, TESTING, AND METROLOGY III, 2008, 7102
  • [27] Simulation of Raman optical activity of multi-component monosaccharide samples
    Melcrova, Adela
    Kessler, Jiri
    Bour, Petr
    Kaminsky, Jakub
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (03) : 2130 - 2142
  • [28] Multi-pole solitons in an inhomogeneous multi-component nonlinear optical medium
    Shen, Yuan
    Tian, Bo
    Zhou, Tian-Yu
    Cheng, Chong-Dong
    CHAOS SOLITONS & FRACTALS, 2023, 171
  • [29] Simultaneous fluorimetric determination of the biodegradation processes of dissolved multi-component PAHs
    Sang, Ling Zi
    Wei, Xing Yuan
    Chen, Jia Ning
    Zhu, Ya Xian
    Zhang, Yong
    TALANTA, 2009, 78 (4-5) : 1339 - 1344
  • [30] Ultrasonic time-of-flight techniques for monitoring multi-component processes
    Steiner, G.
    Deinhammer, C.
    ELEKTROTECHNIK UND INFORMATIONSTECHNIK, 2009, 126 (05): : 200 - 205