Laser-induced damage of high power systems: phenomenology and mechanisms

L. Lamaignère, R. Courchinoux, N. Roquin, R. Parreault, T. Donval
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引用次数: 2

Abstract

Laser damage resistance is a key factor for the operation and the improvement of high power laser systems. Up today laser damage performance of optical components is mainly a defect related material characteristic. Metrology procedures have been developed to realize repeatable and accurate measurements of surface damage density due to nanosecond pulses. These measurement techniques were used to guide the improvement of surface damage resistance. Fractures must be eliminated from surfaces, in order not to suffer a damage growth phenomenon, whose exponential character will reduce the optical lifetime. High intensity hot spots due to beam modulations, spatial and/or temporal modulations, can also cause surface damage. Specific set-ups and experiments were carried out that allowed us to analyze and explain these phenomena: damage initiation mechanisms, damage growth and beam propagation inside the optical components. The presentation aims to highlight relevant progress on these topics (1) initiation mechanisms due to defects show two phases: a first incubation phase followed by the expansion one of the damage site ; it appears also that damage diameters are well correlated with the expansion fluence, (2) a refined bulk observation coupled to a fractal analysis allow the quantification of bulk damage and therefore to explain the laser damage growth and its dependence on beam parameters like pulse length and fluence (3) non-linear amplification of phase and amplitude modulations lead to the amplification of the spatial pre-existing small scale modulations that increase the laser energy density locally and finally the number of damage sites. The whole of results, damage initiation, damage growth and beam propagation, is discussed to the light of the laser damage observed on LMJ optics.
高功率系统的激光损伤:现象学和机理
激光的抗损伤性是影响大功率激光系统运行和改进的关键因素。目前光学元件的激光损伤性能主要与材料的缺陷特性有关。计量程序已经发展到实现可重复的和精确的测量表面损伤密度由于纳秒脉冲。这些测量技术用于指导表面抗损伤性能的提高。为了避免出现损伤增长现象,必须消除表面上的断裂,而损伤增长现象的指数特性会降低光学寿命。由于光束调制、空间和/或时间调制造成的高强度热点也会造成表面损伤。具体的设置和实验使我们能够分析和解释这些现象:光学元件内部的损伤引发机制、损伤增长和光束传播。本报告旨在强调这些主题的相关进展(1)缺陷引发机制表现为两个阶段:第一个孵化阶段,随后是损伤部位的扩展阶段;损伤直径似乎也与膨胀流量密切相关,(2)精细体观测与分形分析相结合,可以量化体损伤,从而解释激光损伤的增长及其对脉冲长度和流量等光束参数的依赖。(3)相位和幅度调制的非线性放大导致空间先前存在的小尺度调制的放大,从而增加局部激光能量密度,最终增加损伤位点的数量。讨论了激光损伤在LMJ光学器件上的产生、损伤生长和光束传播的全过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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