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表面裂纹对脆性KH₂PO₄晶体抗激光损伤性能的影响。

Influence of surface cracks on laser-induced damage resistance of brittle KH₂PO₄ crystal.

作者信息

Cheng Jian, Chen Mingjun, Liao Wei, Wang Haijun, Wang Jinghe, Xiao Yong, Li Mingquan

出版信息

Opt Express. 2014 Nov 17;22(23):28740-55. doi: 10.1364/OE.22.028740.

Abstract

Single point diamond turning (SPDT) currently is the leading finishing method for achieving ultra-smooth surface on brittle KH(2)PO(4) crystal. In this work, the light intensification modulated by surface cracks introduced by SPDT cutting is numerically simulated using finite-difference time-domain algorithm. The results indicate that the light intensification caused by surface cracks is wavelength, crack geometry and position dependent. Under the irradiation of 355 nm laser, lateral cracks on front surfaces and conical cracks on both front and rear surfaces can produce light intensification as high as hundreds of times, which is sufficient to trigger avalanche ionization and finally lower the laser damage resistance of crystal components. Furthermore, we experimentally tested the laser-induced damage thresholds (LIDTs) on both crack-free and flawed crystal surfaces. The results imply that brittle fracture with a series of surface cracks is the dominant source of laser damage initiation in crystal components. Due to the negative effect of surface cracks, the LIDT on KDP crystal surface could be sharply reduced from 7.85J/cm(2) to 2.33J/cm(2) (355 nm, 6.4 ns). In addition, the experiment of laser-induced damage growth is performed and the damage growth behavior agrees well with the simulation results of light intensification caused by surface cracks with increasing crack depths.

摘要

单点金刚石车削(SPDT)目前是在脆性KH(2)PO(4)晶体上获得超光滑表面的主要精加工方法。在这项工作中,利用时域有限差分算法对由SPDT切削引入的表面裂纹调制的光增强进行了数值模拟。结果表明,表面裂纹引起的光增强与波长、裂纹几何形状和位置有关。在355 nm激光照射下,前表面的横向裂纹以及前后表面的锥形裂纹可产生高达数百倍的光增强,这足以引发雪崩电离并最终降低晶体部件的激光损伤抗性。此外,我们对无裂纹和有缺陷的晶体表面的激光诱导损伤阈值(LIDT)进行了实验测试。结果表明,带有一系列表面裂纹的脆性断裂是晶体部件中激光损伤起始的主要来源。由于表面裂纹的负面影响,KDP晶体表面的LIDT可从7.85J/cm(2)急剧降低至2.33J/cm(2)(355 nm,6.4 ns)。此外,进行了激光诱导损伤增长实验,损伤增长行为与表面裂纹随裂纹深度增加引起的光增强模拟结果吻合良好。

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