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Superheating in liquid and solid phases during femtosecond-laser pulse interaction with thin metal film

机译:飞秒激光脉冲与金属薄膜相互作用时液相和固相过热

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Superheating of the liquid phase caused by non-equilibrium evaporation during femtosecond-laser processing of a thin metal film is investigated by adopting the wave hypothesis along with the two-temperature model. The simulation results show that the superheating in the liquid occurs shortly after the evaporation. For a 100-fs laser pulse of 0.7 J/cm2, the maximum degree of superheating in liquid can reach 600 K. The superheating in solid can also be captured in the current model, which can be as high as 300 K. The effects of laser fluence, pulse duration and film thickness on the degree of superheating were studied. A higher laser fluence will increase the degree of superheating in liquid significantly but has little effect for the solid part. In the range adopted in the current work, the pulse duration has little effect on the degree of superheating in both liquid and solid phases.
机译:采用波动假设和两温模型,研究了飞秒激光加工金属薄膜过程中由于非平衡蒸发引起的液相过热现象。模拟结果表明,液体的过热在蒸发后不久发生。对于0.7 J / cm 2 的100 fs激光脉冲,液体中的最大过热度可以达到600K。在当前模型中也可以捕获固体中的过热,其形式​​如下:高达300K。研究了激光通量,脉冲持续时间和膜厚对过热度的影响。较高的激光注量会显着增加液体中的过热度,但对固体部分影响很小。在当前工作采用的范围内,脉冲持续时间对液相和固相的过热度影响很小。

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