A critical review on the simulation of ultra-short pulse laser-metal interactions based on a two-temperature model (TTM)

超短脉冲激光器 激光器 超短脉冲 多光子脉冲内干涉相位扫描 材料科学 飞秒脉冲整形 光学 激光烧蚀 脉搏(音乐) 烧蚀 带宽限制脉冲 超快激光光谱学 物理 航空航天工程 工程类 探测器
作者
Shijie Song,Qinghua Lu,Peilei Zhang,Hua Yan,Haichuan Shi,Zhishui Yu,Tianzhu Sun,Zhi-Rong Luo,Yingtao Tian
出处
期刊:Optics and Laser Technology [Elsevier]
卷期号:159: 109001-109001 被引量:20
标识
DOI:10.1016/j.optlastec.2022.109001
摘要

The generation of periodical micro-nanostructures by laser-induced materials with ultrashort pulses has been a research hotspot in recent years and has been used extensively in many fields. There is a lot of research being done on laser-induced periodic surface structures (LIPSS, ripple) in the areas of navigation, medicine, aerospace, biology, etc. The study of laser ablation is greatly influenced by the intricate physical process of interaction between an ultrashort pulse laser and the material. In order to more successfully conquer this challenge, this paper reviews the ultrashort pulse laser ablation, induced material surface formation of periodic surface structure important theory, including the electromagnetic theory and matter reorganization theory. By summarizing the complex physical processes of ultrashort pulse laser ablation, review the most popular two-temperature model in contemporary ultrashort pulse ablation simulation. The effect of the two-temperature model on the development of ultrashort pulse laser technology is analyzed. By discussing using a two-temperature model to enhance the single-pulse laser ablation analysis and promote the understanding of the periodic micro-nano structures generated on the material's surface by ultrashort pulse laser ablation. This paper introduces a variety of complex two-temperature model methods to simulate the interaction between ultrashort pulse laser and metal. The main difficulties faced by ultrashort pulse laser processing are listed, and suggestions for simulation of ultrashort pulse laser processing in the future are put forward.

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