Department of Chemistry, Graduate School of Science, Kyoto University, Sakyo-ku, Kyoto 606-8502, Japan.
Phys Chem Chem Phys. 2011 Apr 21;13(15):7043-59. doi: 10.1039/c0cp01051k. Epub 2011 Mar 10.
We present a novel pathway analysis of super-exchange electronic couplings in electron transfer reactions using localized molecular orbitals from multi-configuration self-consistent field (MCSCF) calculations. In our analysis, the electronic coupling and the tunneling pathways can be calculated in terms of the configuration interaction (CI) Hamiltonian matrix obtained from the localized MCSCF wave function. Making use of the occupation restricted multiple active spaces (ORMAS) method can effectively produce the donor, acceptor, and intermediate configuration state functions (CSFs) and CIs among these CSFs. In order to express the electronic coupling as a sum of individual tunneling pathways contributions, we employed two perturbative methods: Löwdin projection-iteration method and higher-order super-exchange method. We applied them to anion couplings of butane-1,4-diyl and pentane-1,5-diyl. The results were (1) the electronic couplings calculated from the two perturbative methods were in reasonable agreement with those from a non-perturbative method (one-half value of the energy difference between the ground and first excited states), (2) the main tunneling pathways consisted of a small number of lower-order super-exchange pathways where bonding, anti-bonding, or extra-valence-shell orbitals were used once or twice, and (3) the interference among a huge number of higher-order super-exchange pathways significantly contributed to the overall electronic coupling, whereas each of them contributed only fractionally. Our method can adequately take into account both effects of non-dynamical electron correlation and orbital relaxation. Comparing with the analyses based on the Koopmans' theorem (ignoring both effects) and the ORMAS-CIs from frozen localized reference orbitals (ignoring the effect of orbital relaxation), we discuss these effects.
我们提出了一种新的途径,使用多组态自洽场(MCSCF)计算中的局域分子轨道来分析电子转移反应中的超交换电子耦合。在我们的分析中,可以根据从局域 MCSCF 波函数获得的组态相互作用(CI)哈密顿矩阵来计算电子耦合和隧道途径。利用占据受限多活性空间(ORMAS)方法可以有效地产生供体、受体和中间组态态函数(CSFs)以及这些 CSFs 之间的 CI。为了将电子耦合表示为各个隧道途径贡献的总和,我们采用了两种微扰方法:Löwdin 投影迭代法和高阶超交换法。我们将它们应用于丁烷-1,4-二基和戊烷-1,5-二基的阴离子耦合。结果是:(1)两种微扰方法计算的电子耦合与非微扰方法(基态和第一激发态之间能量差的一半)吻合较好;(2)主要隧道途径由少数低阶超交换途径组成,其中使用了一次或两次键合、反键合或额外价壳轨道;(3)大量高阶超交换途径之间的干涉对整体电子耦合有显著贡献,而每个途径只贡献一小部分。我们的方法可以充分考虑非动力学电子相关和轨道弛豫的影响。与基于 Koopmans 定理(忽略这两个影响)和基于冻结局域参考轨道的 ORMAS-CI(忽略轨道弛豫的影响)的分析相比,我们讨论了这些影响。