论文标题

暴露于飞秒激光脉冲的薄金属膜的损坏阈值评估:材料厚度的作用

Damage threshold evaluation of thin metallic films exposed to femtosecond laser pulses: the role of material thickness

论文作者

Tsibidis, George D., Mansour, Dimitris, Stratakis, Emmanuel

论文摘要

飞秒脉冲激光器的使用,由于其能力促进在微观和纳米长度尺度上制造精确模式的能力,因此受到了极大的关注。有效材料处理的关键问题是准确确定与激光峰值相关的损伤阈值,在激光峰值上,在辐照固体表面上发生最小的损伤。尽管以前的大量报道集中在评估激光条件上,这导致了损害的发作,但对与光学渗透深度相当的薄膜的光学和热膜的调查仍然是一个未开发的区域。在本报告中,研究了对各种参数(例如光子能量和材料厚度对各种金属损伤阈值的影响)的详细理论分析(AU,AG,Cu,Cu,al,Ni,Ni,Ti,Ti,Cr,不锈钢)。使用多尺理模型,该模型将能量吸收,电子激发,放松过程和最小的表面修饰相关联,从而导致材料损伤的发作。理论模型与一些实验结果的令人满意的一致性表明,损坏阈值评估方法可以代表一种系统的方法,用于设计有效的基于激光的制造系统并优​​化各种应用程序的处理结果。

The employment of femtosecond pulsed lasers has received significant attention due to its capability to facilitate fabrication of precise patterns at the micro- and nano- lengths scales. A key issue for efficient material processing is the accurate determination of the damage threshold that is associated with the laser peak fluence at which minimal damage occurs on the surface of the irradiated solid. Despite a wealth of previous reports that focused on the evaluation of the laser conditions that lead to the onset of damage, the investigation of both the optical and thermal response of thin films of sizes comparable to the optical penetration depth is still an unexplored area. In this report, a detailed theoretical analysis of the impact of various parameters such as the photon energies and material thickness on the damage threshold for various metals (Au, Ag, Cu, Al, Ni, Ti, Cr, Stainless Steel) is investigated. A multiscale physical model is used that correlates the energy absorption, electron excitation, relaxation processes and minimal surface modification which leads to the onset of material damage. The satisfactory agreement of the theoretical model with some experimental results indicates that the damage threshold evaluation method could represent a systematic approach towards designing efficient laser-based fabrication systems and optimizing the processing outcome for various applications.

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