Liao Can, Kasper Joseph M, Jenkins Andrew J, Yang Ping, Batista Enrique R, Frisch Michael J, Li Xiaosong
Department of Chemistry, University of Washington, Seattle, Washington98195, United States.
Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico87545, United States.
JACS Au. 2023 Feb 1;3(2):358-367. doi: 10.1021/jacsau.2c00659. eCollection 2023 Feb 27.
Spin-orbit coupling (SOC) is an important driving force in photochemistry. In this work, we develop a perturbative spin-orbit coupling method within the linear response time-dependent density function theory framework (TDDFT-SO). A full state interaction scheme, including singlet-triplet and triplet-triplet coupling, is introduced to describe not only the coupling between the ground and excited states, but also between excited states with all couplings between spin microstates. In addition, expressions to compute spectral oscillator strengths are presented. Scalar relativity is included variationally using the second-order Douglas-Kroll-Hess Hamiltonian, and the TDDFT-SO method is validated against variational SOC relativistic methods for atomic, diatomic, and transition metal complexes to determine the range of applicability and potential limitations. To demonstrate the robustness of TDDFT-SO for large-scale chemical systems, the UV-Vis spectrum of Au(SR) is computed and compared to experiment. Perspectives on the limitation, accuracy, and capability of perturbative TDDFT-SO are presented via analyses of benchmark calculations. Additionally, an open-source Python software package (PyTDDFT-SO) is developed and released to interface with the Gaussian 16 quantum chemistry software package to perform this calculation.
自旋轨道耦合(SOC)是光化学中的一种重要驱动力。在本工作中,我们在含时密度泛函理论框架(TDDFT-SO)的线性响应内开发了一种微扰自旋轨道耦合方法。引入了一种全态相互作用方案,包括单重态 - 三重态和三重态 - 三重态耦合,不仅用于描述基态与激发态之间的耦合,还用于描述自旋微态之间所有耦合的激发态之间的耦合。此外,还给出了计算光谱振子强度的表达式。使用二阶道格拉斯 - 克罗尔 - 赫斯哈密顿量变分地包含标量相对论,并针对原子、双原子和过渡金属配合物的变分SOC相对论方法验证了TDDFT-SO方法,以确定其适用范围和潜在局限性。为了证明TDDFT-SO对于大规模化学体系的稳健性,计算了Au(SR)的紫外 - 可见光谱并与实验进行了比较。通过基准计算分析,给出了关于微扰TDDFT-SO的局限性、准确性和能力的观点。此外,还开发并发布了一个开源Python软件包(PyTDDFT-SO),以与高斯16量子化学软件包接口来执行此计算。