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一种用于反应动力学的包含价层非绝热相互作用和自旋轨道效应的非绝热表示。

A diabatic representation including both valence nonadiabatic interactions and spin-orbit effects for reaction dynamics.

作者信息

Valero Rosendo, Truhlar Donald G

机构信息

Department of Chemistry and Supercomputing Institute, University of Minnesota, Minneapolis, Minnesota 55455-0431, USA.

出版信息

J Phys Chem A. 2007 Sep 6;111(35):8536-51. doi: 10.1021/jp072590u. Epub 2007 Aug 11.

Abstract

A diabatic representation is convenient in the study of electronically nonadiabatic chemical reactions because the diabatic energies and couplings are smooth functions of the nuclear coordinates and the couplings are scalar quantities. A method called the fourfold way was devised in our group to generate diabatic representations for spin-free electronic states. One drawback of diabatic states computed from the spin-free Hamiltonian, called a valence diabatic representation, for systems in which spin-orbit coupling cannot be ignored is that the couplings between the states are not zero in asymptotic regions, leading to difficulties in the calculation of reaction probabilities and other properties by semiclassical dynamics methods. Here we report an extension of the fourfold way to construct diabatic representations suitable for spin-coupled systems. In this article we formulate the method for the case of even-electron systems that yield pairs of fragments with doublet spin multiplicity. For this type of system, we introduce the further simplification of calculating the triplet diabatic energies in terms of the singlet diabatic energies via Slater's rules and assuming constant ratios of Coulomb to exchange integrals. Furthermore, the valence diabatic couplings in the triplet manifold are taken equal to the singlet ones. An important feature of the method is the introduction of scaling functions, as they allow one to deal with multibond reactions without having to include high-energy diabatic states. The global transformation matrix to the new diabatic representation, called the spin-valence diabatic representation, is constructed as the product of channel-specific transformation matrices, each one taken as the product of an asymptotic transformation matrix and a scaling function that depends on ratios of the spin-orbit splitting and the valence splittings. Thus the underlying basis functions are recoupled into suitable diabatic basis functions in a manner that provides a multibond generalization of the switch between Hund's cases in diatomic spectroscopy. The spin-orbit matrix elements in this representation are taken equal to their atomic values times a scaling function that depends on the internuclear distances. The spin-valence diabatic potential energy matrix is suitable for semiclassical dynamics simulations. Diagonalization of this matrix produces the spin-coupled adiabatic energies. For the sake of illustration, diabatic potential energy matrices are constructed along bond-fission coordinates for the HBr and the BrCH(2)Cl molecules. Comparison of the spin-coupled adiabatic energies obtained from the spin-valence diabatics with those obtained by ab initio calculations with geometry-dependent spin-orbit matrix elements shows that the new method is sufficiently accurate for practical purposes. The method formulated here should be most useful for systems with a large number of atoms, especially heavy atoms, and/or a large number of spin-coupled electronic states.

摘要

非绝热表示法在研究电子非绝热化学反应时很方便,因为非绝热能量和耦合是核坐标的平滑函数,且耦合是标量。我们小组设计了一种称为四重路径的方法,用于生成无自旋电子态的非绝热表示。对于自旋轨道耦合不可忽略的系统,由无自旋哈密顿量计算得到的非绝热态(称为价非绝热表示)的一个缺点是,在渐近区域中态之间的耦合不为零,这导致用半经典动力学方法计算反应概率和其他性质时出现困难。本文我们报告了四重路径的扩展,以构建适用于自旋耦合系统的非绝热表示。在本文中,我们针对产生具有双重自旋多重性的碎片对的偶数电子系统的情况,阐述了该方法。对于这类系统,我们通过斯莱特规则,在单重态非绝热能量的基础上进一步简化计算三重态非绝热能量,并假设库仑积分与交换积分的比值恒定。此外,三重态流形中的价非绝热耦合取为与单重态相同。该方法的一个重要特征是引入了标度函数,因为它们使我们能够处理多键反应,而无需包含高能非绝热态。到新的非绝热表示(称为自旋 - 价非绝热表示)的全局变换矩阵,被构建为特定通道变换矩阵的乘积,每个特定通道变换矩阵都是一个渐近变换矩阵和一个依赖于自旋轨道分裂与价分裂比值的标度函数的乘积。因此,基础基函数以一种提供双原子光谱中洪德情况之间转换的多键推广的方式重新耦合为合适的非绝热基函数。在这种表示中,自旋轨道矩阵元取为其原子值乘以一个依赖于核间距的标度函数。自旋 - 价非绝热势能矩阵适用于半经典动力学模拟。对该矩阵进行对角化可得到自旋耦合绝热能量。为了说明,沿着HBr和BrCH(2)Cl分子的键断裂坐标构建了非绝热势能矩阵。将从自旋 - 价非绝热态得到的自旋耦合绝热能量与通过具有几何依赖自旋轨道矩阵元的从头算得到的结果进行比较,表明该新方法在实际应用中具有足够的准确性。本文阐述的方法对于具有大量原子(尤其是重原子)和/或大量自旋耦合电子态的系统应该最为有用。

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