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设计经过特殊调整的反应坐标,以便经济地计算势能和动能算符,包括几何结构弛豫。

Design of specially adapted reactive coordinates to economically compute potential and kinetic energy operators including geometry relaxation.

作者信息

Thallmair Sebastian, Roos Matthias K, de Vivie-Riedle Regina

机构信息

Department Chemie, Ludwig-Maximilians-Universität München, D-81377 München, Germany.

出版信息

J Chem Phys. 2016 Jun 21;144(23):234104. doi: 10.1063/1.4953667.

Abstract

Quantum dynamics simulations require prior knowledge of the potential energy surface as well as the kinetic energy operator. Typically, they are evaluated in a low-dimensional subspace of the full configuration space of the molecule as its dimensionality increases proportional to the number of atoms. This entails the challenge to find the most suitable subspace. We present an approach to design specially adapted reactive coordinates spanning this subspace. In addition to the essential geometric changes, these coordinates take into account the relaxation of the non-reactive coordinates without the necessity of performing geometry optimizations at each grid point. The method is demonstrated for an ultrafast photoinduced bond cleavage in a commonly used organic precursor for the generation of electrophiles. The potential energy surfaces for the reaction as well as the Wilson G-matrix as part of the kinetic energy operator are shown for a complex chemical reaction, both including the relaxation of the non-reactive coordinates on equal footing. A microscopic interpretation of the shape of the G-matrix elements allows to analyze the impact of the non-reactive coordinates on the kinetic energy operator. Additionally, we compare quantum dynamics simulations with and without the relaxation of the non-reactive coordinates included in the kinetic energy operator to demonstrate its influence.

摘要

量子动力学模拟需要势能面以及动能算符的先验知识。通常,随着分子全构型空间的维度与原子数成正比增加,它们在该全构型空间的低维子空间中进行评估。这带来了寻找最合适子空间的挑战。我们提出一种方法来设计专门适配的跨越该子空间的反应坐标。除了基本的几何变化外,这些坐标还考虑了非反应坐标的弛豫,而无需在每个网格点进行几何优化。该方法通过用于生成亲电试剂的常用有机前体中的超快光诱导键裂解进行了演示。对于一个复杂的化学反应,展示了反应的势能面以及作为动能算符一部分的威尔逊G矩阵,两者都平等地包含了非反应坐标的弛豫。对G矩阵元素形状的微观解释有助于分析非反应坐标对动能算符的影响。此外,我们比较了包含和不包含动能算符中非反应坐标弛豫的量子动力学模拟,以证明其影响。

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