Mališ Momir, Vandaele Eva, Luber Sandra
Department of Chemistry, University of Zürich, Winterthurerstrasse 190, 8057 Zürich, Switzerland.
J Chem Theory Comput. 2022 Jul 12;18(7):4082-4094. doi: 10.1021/acs.jctc.1c01046. Epub 2022 Jun 6.
A procedure for the calculation of spin-orbit coupling (SOC) at the delta self-consistent field (ΔSCF) level of theory is presented. Singlet and triplet excited electronic states obtained with the ΔSCF method are expanded into a linear combination of singly excited Slater determinants composed of ground electronic state Kohn-Sham orbitals. This alleviates the nonorthogonality between excited and ground electronic states and introduces a framework, similar to the auxiliary wave function at the time-dependent density functional theory (TD-DFT) level, for the calculation of observables. The ΔSCF observables of the formaldehyde system were compared to reference TD-DFT values. Our procedure gives all components (energies, gradients, nonadiabatic couplings, and SOC terms) at the ΔSCF level of theory for conducting efficient, full-atomistic nonadiabatic molecular dynamics with intersystem crossing, particularly in condensed phase systems.
本文提出了一种在δ自洽场(ΔSCF)理论水平上计算自旋-轨道耦合(SOC)的方法。用ΔSCF方法得到的单重态和三重态激发电子态被展开为由基态Kohn-Sham轨道组成的单激发Slater行列式的线性组合。这减轻了激发态与基态电子态之间的非正交性,并引入了一个类似于含时密度泛函理论(TD-DFT)水平上的辅助波函数的框架,用于计算可观测量。将甲醛体系的ΔSCF可观测量与参考TD-DFT值进行了比较。我们的方法在ΔSCF理论水平上给出了所有分量(能量、梯度、非绝热耦合和SOC项),以便进行高效的、全原子的、具有系间窜越的非绝热分子动力学计算,特别是在凝聚相体系中。