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Numerical simulation of ballistic electron dynamics and heat transport in metallic targets exposed to ultrashort laser pulse

机译:超短激光脉冲对金属靶的弹道电子动力学和热传递的数值模拟

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摘要

The role of ballistic electrons generated during ultrashort pulse laser (USPL) absorption in metallic targets was investigated in a wide range of laser intensities using our developed simulation package FEMTO-2D. The simulation package is based on the numerical solution of the two-temperature model with the assumption of local thermal equilibrium for electron and lattice subsystems within the simulation cell at any time step. Electron thermodynamic parameters were calculated through the processes of material transition from the cold solid state into the dense plasma state during and after the pulse based on the collision theory. The appropriate model for temperature dependent thermodynamic parameters allows defining the heat transport during an early stage of the USPL-matter interaction directly, without relying on the effective absorption depth model. The study investigated, for the first time, using integrated computer simulation the role of ballistic electrons in energy transfer and heat conduction during USPL deposition. The simulation predictions of the electron heat transport dynamics during and shortly after the laser pulse were benchmarked for the gold target against available experimental data and were able to confirm the dominant role of the ballistic electrons in the initial heat propagation within 100-120 nm of the target at laser intensities below 10(13) W/cm(2). Published by AIP Publishing.
机译:使用我们开发的模拟软件包FEMTO-2D,可以在各种激光强度下研究超短脉冲激光(USPL)在金属靶中吸收过程中产生的弹道电子的作用。该模拟程序包基于双温度模型的数值解,并假设在任何时间步长下模拟单元中电子和晶格子系统的局部热平衡。根据碰撞原理,通过脉冲过程中和之后物质从冷固态转变为致密等离子体状态的过程,计算出电子热力学参数。用于温度相关热力学参数的适当模型可以直接定义USPL物质相互作用早期的热传递,而无需依赖有效的吸收深度模型。该研究首次使用集成计算机模拟研究了弹道电子在USPL沉积过程中能量转移和热传导中的作用。模拟激光脉冲期间和之后不久的电子传热动力学,并根据现有的实验数据对金靶标进行了基准检验,并能够确认弹道电子在激光的100-120 nm范围内的初始热传播中的主导作用。激光强度低于10(13)W / cm(2)的目标。由AIP Publishing发布。

著录项

  • 来源
    《Journal of Applied Physics》 |2018年第6期|065108.1-065108.11|共11页
  • 作者单位

    Purdue Univ, Sch Nucl Engn, Ctr Mat Under Extreme Environm CMUXE, Indiana, PA 47907 USA;

    Purdue Univ, Sch Nucl Engn, Ctr Mat Under Extreme Environm CMUXE, Indiana, PA 47907 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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