Nazmutdinov Renat R, Roznyatovskaya Nataliya V, Glukhov Dmitrii V, Manyurov Ibragim, Mazin Vladimir M, Tsirlina Galina A, Probst Michael
Kazan State Technological University, K. Marx Str., 68 420015 Kazan, Russian Federation.
Inorg Chem. 2008 Aug 4;47(15):6659-73. doi: 10.1021/ic702511w. Epub 2008 Jun 27.
We present a combined experimental and computational approach to the modeling and prediction of reactivity in multistep processes of heterogeneous electron transfer. The approach is illustrated by the study of a Robson-type binuclear complex (-Cu(II)-Cu(II)-) undergoing four-electron reduction in aqueous media and water-acetonitrile mixtures. The observed effects of solvent, pH, buffer capacity, and supporting electrolyte are discussed in the framework of a general reaction scheme involving two main routes; one of them includes protonation of intermediate species. The main three problems are addressed on the basis of modern charge transfer theory: (1) the effect of the nature of reactant and intermediate species (protonated/deprotonated, bare or associated with supporting anion/solvent molecule) on the standard redox potential, the electronic transmission coefficient, and the intramolecular reorganization; (2) possible effect of protonation on the shape of the reaction free energy surfaces which are built using the Anderson Hamiltonian; (3) electron transfer across an adsorbed chloride anion. Quantum chemical calculations were performed at the density functional theory level.
我们提出了一种结合实验和计算的方法,用于对多步异质电子转移过程中的反应活性进行建模和预测。通过研究在水介质和水 - 乙腈混合物中经历四电子还原的罗布森型双核配合物(-Cu(II)-Cu(II)-)来说明该方法。在包含两条主要途径的一般反应方案框架内讨论了观察到的溶剂、pH值、缓冲容量和支持电解质的影响;其中一条途径包括中间物种的质子化。基于现代电荷转移理论解决了三个主要问题:(1)反应物和中间物种(质子化/去质子化、裸露或与支持阴离子/溶剂分子缔合)的性质对标准氧化还原电位、电子传输系数和分子内重组的影响;(2)质子化对使用安德森哈密顿量构建的反应自由能表面形状的可能影响;(3)电子通过吸附的氯离子的转移。在密度泛函理论水平上进行了量子化学计算。