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Excitation - melting - ablation: Theoretical investigations of key processes during ultrashort pulsed laser machining

机译:激发-熔化-烧蚀:超短脉冲激光加工关键过程的理论研究

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Ultrashort laser pulse interaction with material involves a number of specialities as compared to longer irradiations. Applying femtosecond laser pulses, the fundamental physical processes such as excitation, melting and ablation are temporally separated, allowing a separate investigation of each of them. The irradiated material passes through highly non-equilibrium states of different kinds on different timescales after irradiation. Thus, the theoretical description of the investigated processes may differ strongly from the classical descriptions valid for equilibrium or steady-state conditions. On a femtosecond timescale we investigate the non-equilibrium of the laser-excited electron gas. With the help of a detailed microscopic approach we study the applicability of simplified macroscopic descriptions of laser absorption and free-electron excitation. We study different melting processes occuring on different timescales in the picosecond regime. The nature of the melting process depends on the laser and material parameters, respectively. Material removal, i.e. ablation, occurs on a pico-to nanosecond time scale, depending on excitation strength. We show theoretical and experimental investigations of the expansion dynamics of the excited material.
机译:与更长的照射相比,超短激光脉冲与材料的相互作用涉及许多专业。施加飞秒激光脉冲,诸如激发,熔化和烧蚀的基本物理过程在时间上是分开的,从而可以对它们中的每一个进行单独的研究。被辐照的材料在辐照后的不同时间尺度上会通过不同种类的高度非平衡态。因此,所研究过程的理论描述可能与对平衡或稳态条件有效的经典描述存在很大差异。在飞秒的时间尺度上,我们研究了激光激发的电子气的非平衡性。借助详细的微观方法,我们研究了激光吸收和自由电子激发的简化宏观描述的适用性。我们研究了皮秒状态下不同时间尺度上发生的不同融化过程。熔化过程的性质分别取决于激光和材料参数。取决于激发强度,材料的去除,即烧蚀,在皮秒到纳秒的时间尺度上发生。我们展示了受激材料膨胀动力学的理论和实验研究。

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