Huang Hao, Xu Yingjie, Luo Guofu, Xie Zhuobin, Ming Wuyi
School of Mechanical Science & Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.
Henan Key Lab of Intelligent Manufacturing of Mechanical Equipment, Zhengzhou University of Light Industry, Zhengzhou 450002, China.
Nanomaterials (Basel). 2022 Apr 30;12(9):1524. doi: 10.3390/nano12091524.
Laser interaction with nanoparticles in liquid is the fundamental theoretical basis for many applications but it is still challenging to observe this nanoscale phenomenon within a few nanoseconds in liquid by experiment. The successful implementation of the two-temperature method integrated with molecular dynamics (TTM-MD) in laser interaction with bulk material has shown great potential in providing a panoramic view of the laser interaction with the nanoparticles. However, the current TTM-MD model has to divide the system into cubic cells, which leads to mistakes near the nanoparticle's surface. We introduce the latest model, which performs the TTM-MD on each individual cluster instead of the cubic cells, and its high-performance parallel cluster analysis algorithm to update the cluster size. The cluster-based TTM-MD revealed the nanoparticle formation mechanism of laser fragmentation in liquid (LFL) and facilitated the study of laser fluence's effect on the size distribution. In addition to LFL, this model is promising to be implemented in the laser thermal therapy of tumors, laser melting in liquid (LML), etc. Although cluster-based TTM-MD has proven to be a powerful tool for studying laser interaction with nanoparticles, a few challenges and future developments for the cluster-based TTM-MD, especially the ionization induced by femtosecond, are also discussed.
激光与液体中纳米粒子的相互作用是许多应用的基础理论依据,但通过实验在纳秒级时间内观察液体中的这种纳米级现象仍具有挑战性。将双温度方法与分子动力学相结合(TTM-MD)在激光与块状材料相互作用中的成功应用,在全景展现激光与纳米粒子的相互作用方面显示出巨大潜力。然而,当前的TTM-MD模型必须将系统划分为立方单元,这会在纳米粒子表面附近导致误差。我们引入了最新模型,该模型对每个单独的团簇而非立方单元执行TTM-MD,并采用其高性能并行团簇分析算法来更新团簇大小。基于团簇的TTM-MD揭示了液体中激光破碎(LFL)形成纳米粒子的机制,并促进了对激光能量密度对尺寸分布影响的研究。除了LFL,该模型有望应用于肿瘤的激光热疗法、液体中的激光熔化(LML)等。尽管基于团簇的TTM-MD已被证明是研究激光与纳米粒子相互作用的有力工具,但也讨论了基于团簇的TTM-MD面临的一些挑战和未来发展方向,特别是飞秒诱导的电离。