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Ultrashort shock waves in nickel induced by femtosecond laser pulses

机译:飞秒激光脉冲在镍中产生的超短冲击波

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摘要

The structure and evolution of ultrashort shock waves generated by femtosecond laser pulses in single-crystal nickel films are investigated by molecular dynamics simulations. Ultrafast laser heating is isochoric, leading to pressurization of a 100-nm-thick layer below the irradiated surface. For low-intensity laser pulses, the highly pressurized subsurface layer breaks into a single elastic shock wave having a combined loading and unloading time ≈10-20 ps. Owing to the time-dependent nature of elastic-plastic transformations, an elastic response is maintained for shock amplitudes exceeding the Hugoniot elastic limit determined from simulations of steady shock waves. However, for high-intensity laser pulses (absorbed laser fluence >0.6 J/cm~2), both elastic and plastic shock waves are formed independently from the initial high-pressure state. Acoustic pulses emitted by the plastic front support the motion of the elastic precursor resulting in a fluence-independent elastic amplitude; whereas the unsupported plastic front undergoes significant attenuation during propagation and may fully decay within the metal film.
机译:通过分子动力学模拟研究了飞秒激光脉冲在单晶镍膜中产生的超短冲击波的结构和演化。超快激光加热是等容的,导致被照射表面下方100纳米厚的层受到压力。对于低强度激光脉冲,高压表面层会分解成单个弹性冲击波,其加载和卸载时间合计约为10-20 ps。由于弹塑性变换具有时间依赖性,因此对于超过由稳定冲击波模拟确定的Hugoniot弹性极限的冲击振幅,可以维持弹性响应。但是,对于高强度激光脉冲(吸收的激光通量> 0.6 J / cm〜2),弹性和塑性冲击波均独立于初始高压状态而形成。塑料前部发出的声脉冲支持弹性前驱体的运动,从而导致与注量无关的弹性振幅。而无支撑的塑料前缘在传播过程中会发生明显的衰减,并可能在金属膜内完全衰减。

著录项

  • 来源
    《Physical review》 |2013年第5期|054109.1-054109.9|共9页
  • 作者单位

    Department of Physics, University of South Florida, Tampa, Florida 33620, USA;

    Department of Physics, University of South Florida, Tampa, Florida 33620, USA;

    Landau Institute for Theoretical Physics, RAS, Chernogolovka 142432, Russia;

    Department of Physics, University of South Florida, Tampa, Florida 33620, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    moleculardynamicsandparticlemethods;

    机译:分子动力学和粒子方法;

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