Opt Lett. 2019 Nov 1;44(21):5342-5345. doi: 10.1364/OL.44.005342.
To optimize optical coating materials, designs, and technologies for high damage resistance, understanding the growth of laser damage is of paramount importance. In this Letter, we show the evolution of femtosecond laser damage in a hafnia-silica (HfO/SiO) multilayer dielectric mirror coating. Depending on various spatial features of damaged sites, we identified several regimes of the laser-material interaction with varying laser fluence and incident number of pulses. A change in surface roughness has been observed only for a small number of pulses, and interestingly, a threshold number of pulses is found for nanocrack formation. We report the polarization-dependent orientation of nanocracks and their growth with an increasing number of pulses. The presented results demonstrate that the laser damage originates from the nanobumps and surface roughening, which then leads to the formation of nanocracks. The presented experimental results acknowledge the existing theoretical models in bulk dielectrics to explain the formation of nanostructures by interference of the incident laser with the scattering radiation from laser-induced inhomogeneities and growth of the field enhancement due to nanoplasma.
为了优化具有高抗损伤能力的光学涂层材料、设计和技术,了解激光损伤的增长至关重要。在这封信件中,我们展示了在氧化铪-二氧化硅(HfO/SiO)多层介质镜涂层中飞秒激光损伤的演变。根据损伤部位的各种空间特征,我们确定了在不同激光强度和脉冲数下激光与材料相互作用的几个阶段。只有在少数几个脉冲的情况下才会观察到表面粗糙度的变化,有趣的是,还发现了形成纳米裂纹的脉冲数阈值。我们报告了纳米裂纹的偏振相关取向及其随脉冲数增加的生长情况。所提出的结果表明,激光损伤源自纳米凸起和表面粗糙度的增加,这进而导致了纳米裂纹的形成。所提出的实验结果证实了现有的体介质理论模型,该模型可以解释由入射激光与激光诱导非均匀散射辐射的干涉以及由于纳米等离子体引起的场增强的增加导致的纳米结构的形成。