Laboratoire de Chimie Quantique, Institut de Chimie Strasbourg, UMR-7177 CNRS/Université de Strasbourg, 1 Rue Blaise Pascal BP 296/R8, F-67008 Strasbourg, France.
Institute of Theoretical Chemistry, Faculty of Chemistry, University of Vienna, Währinger Straße 17, 1090 Vienna, Austria.
J Chem Phys. 2018 Mar 28;148(12):124119. doi: 10.1063/1.5022760.
In the construction of diabatic vibronic Hamiltonians for quantum dynamics in the excited-state manifold of molecules, the coupling constants are often extracted solely from information on the excited-state energies. Here, a new protocol is applied to get access to the interstate vibronic coupling constants at the time-dependent density functional theory level through the overlap integrals between excited-state adiabatic auxiliary wavefunctions. We discuss the advantages of such method and its potential for future applications to address complex systems, in particular, those where multiple electronic states are energetically closely lying and interact. We apply the protocol to the study of prototype rhenium carbonyl complexes [Re(CO)(N,N)(L)] for which non-adiabatic quantum dynamics within the linear vibronic coupling model and including spin-orbit coupling have been reported recently.
在构建分子激发态哈密顿量的绝热振子模型以研究量子动力学时,耦合常数通常仅从激发态能量信息中提取。在这里,我们应用一种新的方案,通过激发态绝热辅助波函数之间的重叠积分,从含时密度泛函理论水平上获得了体系间振子耦合常数。我们讨论了这种方法的优点及其在解决复杂体系(特别是那些多个电子态能量相近且相互作用的体系)中的潜在应用。我们将该方案应用于铼羰基配合物[Re(CO)(N,N)(L)]的研究,最近已经有报道称,该配合物在包含自旋轨道耦合的线性振子耦合模型内存在非绝热量子动力学。