脆弱性
分子动力学
协调数
玻璃化转变
热力学
放松(心理学)
动力非均质性
材料科学
非晶态金属
过冷
三元运算
动态结构因子
结构因子
化学物理
缩放比例
化学
结晶学
计算化学
物理
合金
聚合物
中子散射
几何学
光学
离子
社会心理学
复合材料
有机化学
计算机科学
散射
数学
程序设计语言
非弹性中子散射
心理学
作者
Yuan‐Chao Hu,Pengfei Guan,Qing Wang,Yong Yang,H. Y. Bai,Weihua Wang
摘要
Although the structure and dynamics of metallic glass-forming liquids have been extensively investigated, studies of the pressure effects are rare. In the present study, the structural and dynamical properties of a ternary metallic liquid are systematically studied via extensive molecular dynamics simulations. Our results clearly show that, like isobaric cooling, isothermal compression could also slow down the dynamics of metallic liquid, leading to glass formation. However, the temperature- and pressure-induced glass transitions differ in the formation of local coordination structures and the variation of fragility. The increase of the kinetic fragility with increasing pressure is also accompanied by a monotonic structural fragility change. These findings may suggest a link between dynamics and structure. In addition, with increasing pressure, the dynamics becomes more heterogeneous, as revealed by the non-Gaussian parameter and dynamic correlation length. Here the length scales of both slow and fast domains are examined and discussed by analyzing the four-point dynamic structure factor associated with spatial correlations of atomic mobility. These correlation lengths coexist in the metallic liquids and grow comparatively in the considered temperature and pressure ranges. Finally, the scaling relation between the relaxation times and correlation lengths is discussed, which is found to be consistent with the spirit of Adam-Gibbs and random first-order transition theories.
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