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Transient reflectivity and transmission changes during plasma formation and ablation in fused silica induced by femtosecond laser pulses

机译:飞秒激光脉冲在熔融石英中等离子体形成和烧蚀过程中的瞬态反射率和透射率变化

摘要

We have studied the plasma formation and ablation dynamics in fused silica upon irradiation with a single 120 fs laser pulse at 800 nm by using fs-resolved pump-probe microscope. It allows recording images of the laser-excited surface at different time delays after the arrival of the pump pulse. This way, we can extract both the temporal evolution of the surface reflectivity and transmission, at 400 nm, for different spatial positions in the spots (and thus for different local fluences) from single series of images. At fluences well above the visible ablation threshold, a fast and large increase of the reflectivity is induced by the formation of a dense free-electron plasma. The maximum reflectivity value is reached within ≈1.5 ps, while the normalized transmission decreases within ≈400 fs. The subsequent temporal evolution of both transient reflectivity and transmission are consistent with the occurrence of surface ablation. In addition, the time-resolved images reveal the existence of a free-electron plasma distribution surrounding the visible ablation crater and thus formed at local fluences below the ablation threshold. The lifetime of this sub-ablation plasma is ≈50 ps, and its maximum electron density amounts to 5.5×1022 cm-3. © 2008 Springer-Verlag Berlin Heidelberg.
机译:我们已经使用fs分辨泵浦探针显微镜研究了在800 nm处用单个120 fs激光脉冲照射后熔融石英中的等离子体形成和消融动力学。它允许在泵浦脉冲到达后以不同的时间延迟记录激光激发表面的图像。这样,我们可以从单个图像序列中提取光斑在不同点的空间位置(因此对于不同的局部通量)在400 nm处的表面反射率和透射率的时间演化。在远高于可见烧蚀阈值的注量下,通过形成致密的自由电子等离子体而引起反射率的快速且大量的增加。在≈1.5ps内达到最大反射率值,而归一化透射率在≈400fs内降低。瞬态反射率和透射率的随后时间演变与表面烧蚀的发生是一致的。另外,时间分辨图像揭示了围绕可见的烧蚀坑的自由电子等离子体分布的存在,并因此在低于烧蚀阈值的局部注量处形成。这种亚消融等离子体的寿命约为50 ps,其最大电子密度为5.5×1022 cm-3。 ©2008施普林格出版社柏林海德堡。

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