用于预测自旋相关过程动力学的非绝热统计理论包

IF 7.1 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Topics in Current Chemistry Pub Date : 2022-02-24 DOI:10.1007/s41061-022-00366-w
Vsevolod D. Dergachev, Mitra Rooein, Ilya D. Dergachev, Aleksandr O. Lykhin, Robert C. Mauban, Sergey A. Varganov
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引用次数: 5

摘要

我们提出了一个非绝热统计理论(NAST)包来预测自旋相关过程的动力学,如系统间交叉、禁止自旋的单分子反应和自旋交叉。NAST包可以计算不同自旋多重度的电子态之间跃迁的概率和速率。微规范(能量相关)和规范(温度相关)速率常数都可以得到。量子效应,包括隧道效应、零点振动能和反应路径干涉,都可以被解释。在单电子态绝热单分子反应的极限下,NAST简化为传统的过渡态理论。由于NAST只需要势能表面上几个点的分子性质,因此它可以应用于大分子系统,与精确的高级电子结构方法一起使用,并用于研究缓慢的非绝热过程。基本的NAST输入数据包括反应物最小值处的核Hessian,以及两态之间最小能量交叉点(MECP)处的核Hessian、能量梯度和自旋轨道耦合。NAST包中包含的附加计算工具可用于从电子结构包的输出文件中提取所需的输入数据,计算MECP上的有效Hessian,并拟合反应坐标以进行更高级的NAST计算。我们描述了理论,它的实现,以及三个应用于不同分子系统的例子。
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NAST: Nonadiabatic Statistical Theory Package for Predicting Kinetics of Spin-Dependent Processes

We present a nonadiabatic statistical theory (NAST) package for predicting kinetics of spin-dependent processes, such as intersystem crossings, spin-forbidden unimolecular reactions, and spin crossovers. The NAST package can calculate the probabilities and rates of transitions between the electronic states of different spin multiplicities. Both the microcanonical (energy-dependent) and canonical (temperature-dependent) rate constants can be obtained. Quantum effects, including tunneling, zero-point vibrational energy, and reaction path interference, can be accounted for. In the limit of an adiabatic unimolecular reaction proceeding on a single electronic state, NAST reduces to the traditional transition state theory. Because NAST requires molecular properties at only a few points on potential energy surfaces, it can be applied to large molecular systems, used with accurate high-level electronic structure methods, and employed to study slow nonadiabatic processes. The essential NAST input data include the nuclear Hessian at the reactant minimum, as well as the nuclear Hessians, energy gradients, and spin–orbit coupling at the minimum energy crossing point (MECP) between two states. The additional computational tools included in the NAST package can be used to extract the required input data from the output files of electronic structure packages, calculate the effective Hessian at the MECP, and fit the reaction coordinate for more advanced NAST calculations. We describe the theory, its implementation, and three examples of application to different molecular systems.

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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry Chemistry-General Chemistry
CiteScore
13.70
自引率
1.20%
发文量
48
期刊介绍: Topics in Current Chemistry is a journal that presents critical reviews of present and future trends in modern chemical research. It covers all areas of chemical science, including interactions with related disciplines like biology, medicine, physics, and materials science. The articles in this journal are organized into thematic collections, offering a comprehensive perspective on emerging research to non-specialist readers in academia or industry. Each review article focuses on one aspect of the topic and provides a critical survey, placing it in the context of the collection. Selected examples highlight significant developments from the past 5 to 10 years. Instead of providing an exhaustive summary or extensive data, the articles concentrate on methodological thinking. This approach allows non-specialist readers to understand the information fully and presents the potential prospects for future developments.
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