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Amplification and regulation of periodic nanostructures in multipulse ultrashort laser-induced surface evolution by electromagnetic-hydrodynamic simulations

机译:电磁 - 流体动力模拟多漏光激光诱导的表面演化中周期纳米结构的扩增和调节

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摘要

The formation of periodic structures in ultrafast laser-irradiated surfaces implies dynamic coupling between the incoming light and the light-driven material. To capture the mutual influence and feedback between light and evolving surface topographies, we investigate numerically the evolution of metal surfaces irradiated by multiple femtosecond laser pulses of sub-, near-, and slightly above-threshold ablation fluence. The multiphysical model combines Maxwell equations and thermohydrodynamic approach based on electron-ion heat transfer and compressible Navier-Stokes equations and allows us to account for interpulse feedback on the resulting surface topographies. First pulses of the subthreshold energy lead to material swelling, nanocavitation few tens of nanometers below the surface, and, as a result, nanoroughness formation on the initially flat surface. Further pulses contribute to the development of periodic surface structures, enhanced absorption, and increased removal rate. Cavitation in the tips of ripples is found to play a crucial role in modification and regulation of surface topography for sub- and near-threshold ablation fluences. At higher laser pulse energy, thermal ablation is mostly involved in surface modification, and the ablation rate per power reaches its maximum at three to five times the ablation threshold fluence, resulting from the optimal heat penetration depth for laser ablation. The numerical results offer a better understanding of the surface topography modifications upon multipulse femtosecond laser irradiation.
机译:超快激光照射表面中周期结构的形成意味着输入光和光驱动材料之间的动态耦合。为了捕获光和不断发展的表面形貌之间的相互影响和反馈,我们在数值上调查了由多个飞秒激光脉冲的金属表面的演变,近似的阈值和略高于阈值消融流量。基于电子 - 离子传热和可压的Navier-Stokes方程的Maxwell方程和热流动动力学方法结合了Maxwell方程和热流动力学方法,并允许我们考虑由所得表面拓扑的眼眶反馈。亚阈值能量的第一脉冲导致材料膨胀,纳米盖在表面以下几十纳米,因此,初始平坦表面上的纳米却形成。进一步的脉冲有助于开发周期性表面结构,增强的吸收和增加的去除率。发现涟漪尖端的空化在表面形貌的改性和调节中发挥至关重要的作用,用于近阈值消融流量。在较高的激光脉冲能量下,热消融主要涉及表面改性,并且每个功率的消融率在烧蚀阈值流量的三到五倍中达到其最大值,从而由激光消融的最佳热穿透深度产生。数值结果可以更好地理解多级飞秒激光照射时表面形貌修改。

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  • 来源
    《Physical review》 |2019年第23期|235412.1-235412.11|共11页
  • 作者单位

    Univ Lyon UJM St Etienne Lab Hubert Curien CNRS UMR 5516 F-42000 St Etienne France;

    Univ Lyon UJM St Etienne Lab Hubert Curien CNRS UMR 5516 F-42000 St Etienne France;

    Univ Lyon UJM St Etienne Lab Hubert Curien CNRS UMR 5516 F-42000 St Etienne France;

    Univ Lyon UJM St Etienne Lab Hubert Curien CNRS UMR 5516 F-42000 St Etienne France;

    Univ Lyon UJM St Etienne Lab Hubert Curien CNRS UMR 5516 F-42000 St Etienne France;

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