扩散
材料科学
晶体生长
枝晶(数学)
锂(药物)
动力学
热的
分子动力学
热力学
化学物理
Crystal(编程语言)
碰撞
活化能
接头(建筑物)
化学
物理化学
物理
计算化学
计算机科学
医学
建筑工程
几何学
数学
量子力学
程序设计语言
内分泌学
计算机安全
工程类
标识
DOI:10.1038/s41467-024-50182-7
摘要
The kinetics of atomic attachments at the liquid/solid interface is one of the foundations of solidification theory, and to date one of the long-standing questions remains: whether or not the growth is thermal activated in pure liquid metals. Using molecular dynamics simulations and machine learning, I have demonstrated that a considerable fraction of liquid atoms at the interfaces of Al(111), (110) and (100) needs thermal activation for growth to take place while the others attach to the crystal without an energy barrier. My joint diffusion/collision model is proved to be robust in predicting the general growth behaviour of pure metals. Here, I show this model is able to quantitatively describe the temperature dependence of growth kinetics and to properly interpret some important experimental observations, and it significantly advances our understanding of solidification theory and also is useful for modelling solidification, phase change materials and lithium dendrite growth in lithium-ion battery.
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