论文标题

飞秒激光震波诱导融合二氧化硅的致密化

Femtosecond laser-shockwave induced densification in fused silica

论文作者

Radhakrishnan, Arunkrishnan, Gateau, Julien, Vlugter, Pieter, Bellouard, Yves

论文摘要

在非开创性方案中,紧密聚焦的飞秒激光梁可以引起足够的冲击波,以达到Giga-Pascal范围或更高的局部压力。在单光束配置中,最高压力区域的位置嵌套在激光对焦区内,因此很难区分冲击波压力与光引起的血浆和等离子体松弛效果。为了避免这一难度,我们考虑了两个在空间分离的聚焦梁,它们单独充当准含量的压力波发射器。两种冲击波都在建设性地形成极端压力范围的区域的区域与直接激光暴露下的区域物理分离。在这里,我们介绍了在两个梁的焦点之间施加压力诱导的熔融二氧化硅致密化的证据,这可以完全归因于每个聚焦激光梁发出的压力波的叠加。具体而言,我们展示了使用拉曼表征,梁偏转技术和选择性蚀刻技术的束间隙和脉冲时间延迟如何影响融合二氧化硅的结构特性。该方法是通用的,可以在多种透明的底物中实现,用于高压物理学研究,与经典方法不同,例如使用钻石砧座,提供了一种手段,可以通过扫描两种光束在两种光束上浏览两种光束,从而提供一种手段

Tightly focused femtosecond laser-beam in the non-ablative regime can induce a shock-wave enough to reach locally pressures in the giga-Pascal range or more. In a single beam configuration, the location of the highest-pressure zone is nested within the laser-focus zone, making it difficult to differentiate the effect of the shock-wave pressure from photo-induced and plasma relaxation effect. To circumvent this difficulty, we consider two spatially separated focused beams that individually act as quasi-simultaneous pressure-wave emitters. The zone where both shock-waves interfere constructively forms a region of extreme pressure range, physically separated from the regions under direct laser exposure. Here, we present evidences of pressured-induced densification in fused silica in between the foci of the two beams, which can be exclusively attributed to the superposition of the pressure waves emitted by each focused laser-beam. Specifically, we show how the beams gap and pulses time-delay affect the structural properties of fused silica using Raman characterization, beam deflection technique, and selective etching techniques. The method is generic and can be implemented in a variety of transparent substrates for high-pressure physics studies and, unlike classical methods, such as the use of diamond anvils, offers a means to create arbitrary-shaped laser-induced high-pressure impacted zones by scanning the two beams across the specimen volume

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