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Direct chemical dynamics simulations: coupling of classical and quasiclassical trajectories with electronic structure theory

化学 化学动力学 黑森矩阵 分子动力学 势能面 化学反应 计算化学 圆锥交点 电子结构 反应动力学 过渡态理论 物理化学 化学物理 热力学 分子 反应速率常数 物理 经典力学 动力学 有机化学 数学 应用数学
作者
Manikandan Paranjothy,Rui Sun,Yu Zhuang,William L. Hase
出处
期刊:Wiley Interdisciplinary Reviews: Computational Molecular Science [Wiley]
卷期号:3 (3): 296-316 被引量:103
标识
DOI:10.1002/wcms.1132
摘要

Abstract In classical and quasiclassical trajectory chemical dynamics simulations, the atomistic dynamics of collisions, chemical reactions, and energy transfer are studied by solving the classical equations of motion. These equations require the potential energy and its gradient for the chemical system under study, and they may be obtained directly from an electronic structure theory. This article reviews such direct dynamics simulations. The accuracy of classical chemical dynamics is considered, with simulations highlighted for the F − + CH 3 OOH reaction and of energy transfer in collisions of CO 2 with a perfluorinated self‐assembled monolayer (F‐SAM) surface. Procedures for interfacing chemical dynamics and electronic structure theory computer codes are discussed. A Hessian‐based predictor–corrector algorithm and high‐accuracy Hessian updating algorithm, for enhancing the efficiency of direct dynamics simulations, are described. In these simulations, an ensemble of trajectories is calculated which represents the experimental and chemical system under study. Algorithms are described for selecting the appropriate initial conditions for bimolecular and unimolecular reactions, gas‐surface collisions, and initializing trajectories at transition states and conical intersections. Illustrative direct dynamics simulations are presented for the Cl − + CH 3 I S N 2 reaction, unimolecular decomposition of the epoxy resin constituent CH 3 NHCHCHCH 3 versus temperature, collisions and reactions of N‐protonated diglycine with a F‐SAM surface that has a reactive head group, and the product energy partitioning for the post‐transition state dynamics of C 2 H 5 F → HF + C 2 H 4 dissociation. © 2012 John Wiley & Sons, Ltd. This article is categorized under: Theoretical and Physical Chemistry > Reaction Dynamics and Kinetics
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