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使用核电子轨道解析海森矩阵的过渡态、反应路径和热化学。

Transition states, reaction paths, and thermochemistry using the nuclear-electronic orbital analytic Hessian.

作者信息

Schneider Patrick E, Tao Zhen, Pavošević Fabijan, Epifanovsky Evgeny, Feng Xintian, Hammes-Schiffer Sharon

机构信息

Department of Chemistry, Yale University, New Haven, Connecticut 06520, USA.

Q-Chem, Inc., 6601 Owens Drive, Suite 105, Pleasanton, California 94588, USA.

出版信息

J Chem Phys. 2021 Feb 7;154(5):054108. doi: 10.1063/5.0033540.

Abstract

The nuclear-electronic orbital (NEO) method is a multicomponent quantum chemistry theory that describes electronic and nuclear quantum effects simultaneously while avoiding the Born-Oppenheimer approximation for certain nuclei. Typically specified hydrogen nuclei are treated quantum mechanically at the same level as the electrons, and the NEO potential energy surface depends on the classical nuclear coordinates. This approach includes nuclear quantum effects such as zero-point energy and nuclear delocalization directly into the potential energy surface. An extended NEO potential energy surface depending on the expectation values of the quantum nuclei incorporates coupling between the quantum and classical nuclei. Herein, theoretical methodology is developed to optimize and characterize stationary points on the standard or extended NEO potential energy surface, to generate the NEO minimum energy path from a transition state down to the corresponding reactant and product, and to compute thermochemical properties. For this purpose, the analytic coordinate Hessian is developed and implemented at the NEO Hartree-Fock level of theory. These NEO Hessians are used to study the S2 reaction of ClCHCl and the hydride transfer of CH . For each system, analysis of the single imaginary mode at the transition state and the intrinsic reaction coordinate along the minimum energy path identifies the dominant nuclear motions driving the chemical reaction. Visualization of the electronic and protonic orbitals along the minimum energy path illustrates the coupled electronic and protonic motions beyond the Born-Oppenheimer approximation. This work provides the foundation for applying the NEO approach at various correlated levels of theory to a wide range of chemical reactions.

摘要

核 - 电子轨道(NEO)方法是一种多分量量子化学理论,它能同时描述电子和核量子效应,同时避免对某些原子核采用玻恩 - 奥本海默近似。通常指定的氢原子核与电子在同一水平上进行量子力学处理,并且NEO势能面取决于经典核坐标。这种方法将诸如零点能和核离域等核量子效应直接纳入势能面。一个依赖于量子核期望值的扩展NEO势能面包含了量子核与经典核之间的耦合。在此,我们开发了理论方法来优化和表征标准或扩展NEO势能面上的驻点,生成从过渡态到相应反应物和产物的NEO最小能量路径,并计算热化学性质。为此,在NEO哈特里 - 福克理论水平上开发并实现了解析坐标海森矩阵。这些NEO海森矩阵用于研究ClCHCl的S2反应和CH的氢转移反应。对于每个系统,通过分析过渡态的单一虚模式以及沿着最小能量路径的内禀反应坐标,确定驱动化学反应的主要核运动。沿着最小能量路径对电子和质子轨道的可视化展示了超越玻恩 - 奥本海默近似的耦合电子和质子运动。这项工作为在各种相关理论水平上应用NEO方法于广泛的化学反应提供了基础。

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