Troisi Alessandro, Ratner Mark A, Zimmt Matthew B
Department of Chemistry, Materials Research Center and Center for Nanofabrication and Molecular Self-Assembly, Northwestern University, Evanston, Illinois, USA.
J Am Chem Soc. 2004 Feb 25;126(7):2215-24. doi: 10.1021/ja038905a.
We present a combined Molecular Dynamics/Quantum Chemical study of the solvent-mediated electronic coupling between an electron donor and acceptor in a C-clamp molecule. We characterize the coupling fluctuations due to the solvent motion for different solvents (acetonitrile, benzene, 1,3-diisopropyl-benzene) for the charge separation and the charge recombination processes. The time scale for solvent-induced coupling fluctuation is approximately 0.1 ps. The effect of these fluctuations on the observed rate is discussed using a recently developed theoretical model. We show that, while the microscopic charge transfer process is very complicated and its computational modeling very subtle, the macroscopic phenomenology can be captured by the standard models. Analyzing the contribution to the coupling given by different solvent orbitals, we find that many solvent orbitals mediate the electron transfer and that paths through different solvent orbitals can interfere constructively or destructively. A relatively small subset of substrate-solvent configurations dominate contributions to solvent-mediated coupling. This subset of configurations is related to the electronic structure of the C-clamp molecule.
我们展示了一项关于C型钳状分子中电子供体与受体之间溶剂介导电子耦合的分子动力学/量子化学联合研究。我们表征了不同溶剂(乙腈、苯、1,3 - 二异丙基苯)在电荷分离和电荷复合过程中由于溶剂运动引起的耦合涨落。溶剂诱导耦合涨落的时间尺度约为0.1皮秒。使用最近开发的理论模型讨论了这些涨落对观测速率的影响。我们表明,虽然微观电荷转移过程非常复杂且其计算建模非常微妙,但宏观现象学可以由标准模型捕获。通过分析不同溶剂轨道对耦合的贡献,我们发现许多溶剂轨道介导电子转移,并且通过不同溶剂轨道的路径可以发生相长干涉或相消干涉。相对较小的一部分底物 - 溶剂构型主导了对溶剂介导耦合的贡献。这一构型子集与C型钳状分子的电子结构有关。