雷亚克夫
纳米技术
形式主义(音乐)
统计物理学
力场(虚构)
材料科学
计算机科学
化学
分子动力学
物理
计算化学
人工智能
艺术
视觉艺术
音乐剧
原子间势
作者
Thomas P. Senftle,Sungwook Hong,Md Mahbubul Islam,Sudhir B. Kylasa,Yuanxia Zheng,Yun Kyung Shin,Chad E. Junkermeier,Roman Engel‐Herbert,Michael J. Janik,Hasan Metin Aktulga,Toon Verstraelen,Ananth Grama,Adri C. T. van Duin
标识
DOI:10.1038/npjcompumats.2015.11
摘要
Abstract The reactive force-field (ReaxFF) interatomic potential is a powerful computational tool for exploring, developing and optimizing material properties. Methods based on the principles of quantum mechanics (QM), while offering valuable theoretical guidance at the electronic level, are often too computationally intense for simulations that consider the full dynamic evolution of a system. Alternatively, empirical interatomic potentials that are based on classical principles require significantly fewer computational resources, which enables simulations to better describe dynamic processes over longer timeframes and on larger scales. Such methods, however, typically require a predefined connectivity between atoms, precluding simulations that involve reactive events. The ReaxFF method was developed to help bridge this gap. Approaching the gap from the classical side, ReaxFF casts the empirical interatomic potential within a bond-order formalism, thus implicitly describing chemical bonding without expensive QM calculations. This article provides an overview of the development, application, and future directions of the ReaxFF method.
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