LaBute M X, Endres R G, Cox D L
Theoretical Division, Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
J Chem Phys. 2004 Nov 1;121(17):8221-30. doi: 10.1063/1.1795152.
We present a model intended for rapid sampling of ground and excited state potential energy surfaces for first-row transition metal active sites. The method is computationally inexpensive and is suited for dynamics simulations where (1) adiabatic states are required "on-the-fly" and (2) the primary source of the electronic coupling between the diabatic states is the perturbative spin-orbit interaction among the 3d electrons. The model Hamiltonian we develop is a variant of the Anderson impurity model and achieves efficiency through a physically motivated basis set reduction based on the large value of the d-d Coulomb interaction U(d) and a Lanczos matrix diagonalization routine to solve for eigenvalues. The model parameters are constrained by fits to the partial density of states obtained from ab initio density functional theory calculations. For a particular application of our model we focus on electron transfer occurring between cobalt ions solvated by ammonium, incorporating configuration interaction between multiplet states for both metal ions. We demonstrate the capability of the method to efficiently calculate adiabatic potential energy surfaces and the electronic coupling factor we have calculated compares well to previous calculations and experiment. (
我们提出了一个模型,旨在对第一行过渡金属活性位点的基态和激发态势能面进行快速采样。该方法计算成本低廉,适用于动力学模拟,其中(1)绝热态需要“即时”获取,(2)非绝热态之间电子耦合的主要来源是3d电子之间的微扰自旋 - 轨道相互作用。我们开发的模型哈密顿量是安德森杂质模型的一个变体,通过基于d - d库仑相互作用U(d)的大值进行合理的基组约简以及使用兰索斯矩阵对角化程序求解本征值来实现高效性。模型参数通过与从头算密度泛函理论计算得到的部分态密度进行拟合来约束。对于我们模型的一个特定应用,我们关注铵溶剂化钴离子之间发生的电子转移,同时考虑了两种金属离子多重态之间的组态相互作用。我们展示了该方法有效计算绝热势能面的能力,并且我们计算的电子耦合因子与先前的计算和实验结果相比良好。