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Systematic investigation on light intensification by typical subsurface cracks on optical glass surfaces

机译:通过光学玻璃表面典型的亚表面裂纹对光增强的系统研究

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摘要

By using the finite-difference time-domain method, a systematic investigation has been performed to analyze the light field redistribution due to the modulation from typical subsurface cracks on optical glass surfaces. The involved cracks that can occur during surface processing are mainly of three basic types, including the cone, the radial, and the lateral. It is found out that the modulated light intensification strongly depends on the crack type and especially on if the crack is on the front or rear surface. If the cone crack is on the rear surface or lateral crack is on the front surface, a strong field enhancement as large as 2 orders of magnitude can occur. As for the other four cases, i.e., cone crack on the front surface, lateral crack on the rear surface, and radial crack on both the front and rear surfaces, they do not result in a field enhancement of 2 orders of magnitude, but only several times higher than the incident light field. The field enhancement mechanisms for various crack types are compared and discussed in detail. If only from the perspective of laser damage initiation resulting from a modulated high electric field, the most harmful subsurface cracks may be initially the lateral on the front surface and the cone on the rear surface.
机译:通过使用时域有限差分法,已进行了系统的研究,以分析由于光学玻璃表面上典型的次表面裂纹引起的调制而产生的光场重新分布。在表面处理过程中可能发生的裂纹主要是三种基本类型,包括圆锥,径向和横向。已经发现,调制光的强度在很大程度上取决于裂纹的类型,尤其取决于裂纹是在前表面还是后表面。如果圆锥形裂纹在后表面上,或者横向裂纹在前表面上,则可能会发生高达2个数量级的强磁场增强。至于其他四种情况,即前表面的圆锥形裂纹,后表面的侧向裂纹和前,后表面的径向裂纹,它们不会导致磁场增强2个数量级,而仅仅是导致比入射光场高几倍比较并详细讨论了各种裂纹类型的场增强机制。如果仅从调制高电场引起的激光损伤引发的角度来看,最有害的次表面裂纹最初可能是正面的侧面和背面的圆锥形。

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