成核
计算机科学
元动力学
图形
过程(计算)
生物系统
统计物理学
可转让性
人工智能
机器学习
化学
分子动力学
理论计算机科学
物理
计算化学
热力学
操作系统
罗伊特
生物
作者
Florian M. Dietrich,Xavier R. Advincula,Gianpaolo Gobbo,Michael A. Bellucci,Matteo Salvalaglio
标识
DOI:10.1021/acs.jctc.3c00722
摘要
The efficient calculation of nucleation collective variables (CVs) is one of the main limitations to the application of enhanced sampling methods to the investigation of nucleation processes in realistic environments. Here we discuss the development of a graph-based model for the approximation of nucleation CVs that enables orders-of-magnitude gains in computational efficiency in the on-the-fly evaluation of nucleation CVs. By performing simulations on a nucleating colloidal system mimicking a multistep nucleation process from solution, we assess the model's efficiency in both postprocessing and on-the-fly biasing of nucleation trajectories with pulling, umbrella sampling, and metadynamics simulations. Moreover, we probe and discuss the transferability of graph-based models of nucleation CVs across systems using the model of a CV based on sixth-order Steinhardt parameters trained on a colloidal system to drive the nucleation of crystalline copper from its melt. Our approach is general and potentially transferable to more complex systems as well as to different CVs.
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