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Role of the temperature dynamics in formation of nanopatterns upon single femtosecond laser pulses on gold

机译:飞秒激光在金上形成纳米图案时温度动力学的作用

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In this paper we investigate the role of two-temperature heating dynamics for formation of periodic structures on metal surfaces exposed to single ultrashort laser pulses.The results of two-temperature model (TTM) two-dimensional simulations are presented on the irradiation of gold by a single 800-nm femtosecond laser pulse the intensity of which is modulated in order to reproduce an initial electron temperature perturbation, which can arise from incoming and scattered surface wave interference. The growing (unstable) modes of the lattice temperature distribution along the surface may be significant in the laser induced periodic surface structures formation. After the end of the laser pulse and before the complete coupling between lattice and electrons occurs, the evolution of the amplitude of the subsequent modulation in the lattice temperature reveals different tendencies depending on the spatial period of the initial modulation. This instabilitylike behavior is shown to arise due to the perturbation of the electronic temperature which relaxes slower for bigger spatial periods and thus imparts more significant modulations to the lattice temperature. Small spatial periods of the order of 100 nm and smaller experience stabilization and fast decay from the more efficient lateral heat diffusion which facilitates the relaxation of the electronic temperature amplitude due to in-depth diffusion. An analytical instability analysis of a simplified version of the TTM set of equations supports the lattice temperature modulation behavior obtained in the simulations and reveals that in-depth diffusion length is a determining parameter in the dispersion relation of unstable modes. Finally, it is discussed how the change in optical properties can intensify the modulation-related effects.
机译:在本文中,我们研究了两温加热动力学在暴露于单个超短激光脉冲的金属表面上形成周期性结构中的作用。提出了两温模型(TTM)二维模拟在金的辐照下的结果单个800纳米飞秒激光脉冲,对其强度进行调制,以产生初始电子温度扰动,该扰动可能是由于入射和散射表面波干扰引起的。沿表面的晶格温度分布的增长(不稳定)模式在激光诱导的周期性表面结构形成中可能很重要。在激光脉冲结束之后,在晶格和电子之间发生完全耦合之前,晶格温度中后续调制幅度的演变显示出不同的趋势,具体取决于初始调制的空间周期。这种不稳定性表现为由于电子温度的扰动而引起的,电子温度的扰动在较大的空间周期内会较慢地松弛,因此会给晶格温度带来更大的调制。 100纳米数量级的较小空间周期和较小的空间周期会从更有效的横向热扩散中获得稳定和快速衰减,这有利于由于深度扩散而导致的电子温度幅度的松弛。对TTM方程组的简化版本的分析不稳定性分析支持了在仿真中获得的晶格温度调制行为,并揭示了深度扩散长度是不稳定模式色散关系的决定性参数。最后,讨论了光学特性的变化如何增强与调制有关的效应。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第5期|054305.1-054305.12|共12页
  • 作者单位

    Ruhr-Universität Bochum, Chair of Applied Laser Technology, Universitatsstraβe 150, 44801 Bochum, Germany;

    HiLASE Centre, Institute of Physics AS CR, Za Radnicí 828, 25241 Dolní Břfežany, Czech Republic;

    Institutfür Theoretische Physik, Westfälische Wilhelms-Universität Münster, Wilhelm-Klemm-Straβe 9, D-48149 Münster, Germany;

    HiLASE Centre, Institute of Physics AS CR, Za Radnicí 828, 25241 Dolní Břfežany, Czech Republic,S.S, Kutateladze Institute of Thermophysics, SB Russian Academy of Sciences, 1 Lavrentyev Avenue, 630090 Novosibirsk, Russia;

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