Liu Jie, Lan Zhenggang, Yang Jinlong
Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, Anhui 230026, China.
Guangdong Provincial Key Laboratory of Chemical Pollution and Environmental Safety and MOE Key Laboratory of Environmental Theoretical Chemistry, SCNU Environmental Research Institute, School of Environment, South China Normal University, Guangzhou 510006, P. R. China.
Phys Chem Chem Phys. 2021 Oct 13;23(39):22313-22323. doi: 10.1039/d1cp03477d.
We implement spin-orbit coupling (SOC) within the framework of semiempirical orthogonalization-corrected methods (OMx). The excited-state wavefunction is generated from configuration interaction with single excitations (CIS). The SOC Hamiltonian in terms of the one-electron Breit-Pauli operator with effective nuclear charges is adopted in this work. Benchmark calculations show that SOCs evaluated using the OMx/CIS method agree very well with those obtained from time-dependent density functional theory. As a particularly attractive application, we incorporate SOCs between singlet and triplet states into Tully's fewest switches surface hopping algorithm to enable excited-state nonadiabatic dynamics simulations, treating internal conversion and intersystem crossing on an equal footing. This semiempirical dynamics simulation approach is applied to investigate ultrafast intersystem crossing processes in core-substituted naphthalenediimides.
我们在半经验正交化校正方法(OMx)的框架内实现自旋轨道耦合(SOC)。激发态波函数通过单激发组态相互作用(CIS)生成。本文采用具有有效核电荷的单电子Breit-Pauli算符来表示SOC哈密顿量。基准计算表明,使用OMx/CIS方法评估的SOC与通过含时密度泛函理论得到的结果非常吻合。作为一个特别有吸引力的应用,我们将单重态和三重态之间的SOC纳入Tully的最少开关表面跳跃算法,以实现激发态非绝热动力学模拟,平等地处理内转换和系间窜越。这种半经验动力学模拟方法被应用于研究核心取代萘二亚胺中的超快系间窜越过程。