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Theoretical studies of ultrafast ablation of metal targets dominated by phase explosion

机译:相爆炸为主的金属靶材超快烧蚀的理论研究

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摘要

Ultrushort pulse laser ablation of metallic targets is investigated theoretically through establishing a modified two-temperature model that takes into account both the temperature dependent electron-lattice coupling and the eleetron-elcctron-collision dominated electron diffusion processes for higher electron temperature regime. The electron-lattice energy coupling rate is found to reduce only slowly with increasing pulse duration, but grow rapidly with laser fluence, implying that the melting time of metallic materials decreases as the laser intensity increases. By taking phase explosion as the primary ablation mechanism, the predicted dependences of ablation rates on laser energy fluences for different laser pulse widths match very well with the experimental data. It is also found that during phase explosion the ablation rale is almost independent of the pulse width, whereas the ablation threshold fluence increases with the pulse duration even for femtosecond pulses. These theoretical results should be useful in having proper understanding of the ablation physics of ultrafast micromaehining of metal targets.
机译:通过建立改进的双温度模型,从理论上研究了金属靶材的超短脉冲激光烧蚀,该模型考虑了温度相关的电子-晶格耦合和以电子为中心的电子扩散过程,以实现更高的电子温度范围。发现电子-晶格能量耦合率仅随着脉冲持续时间的增加而缓慢降低,而随着激光通量的增加而快速增长,这意味着金属材料的熔化时间随着激光强度的增加而减少。通过将相爆炸作为主要的烧蚀机制,对于不同的激光脉冲宽度,烧蚀速率对激光能量注量的预测依赖性与实验数据非常吻合。还发现,在相爆炸期间,烧蚀规则几乎与脉冲宽度无关,而即使对于飞秒脉冲,烧蚀阈值注量也随脉冲持续时间而增加。这些理论结果应有助于正确理解金属靶材的超快微机械化的烧蚀物理学。

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