Albinsson Bo, Eng Mattias P, Pettersson Karin, Winters Mikael U
Department of Chemical and Biological Engineering/Physical Chemistry, Chalmers University of Technology, SE-412 96, Göteborg, Sweden.
Phys Chem Chem Phys. 2007 Nov 28;9(44):5847-64. doi: 10.1039/b706122f. Epub 2007 Jul 17.
Electron and energy transfer reactions in covalently connected donor-bridge-acceptor assemblies are strongly dependent, not only on the donor-acceptor distance, but also on the electronic structure of the bridge. In this article we describe some well characterised systems where the bridges are pi-conjugated chromophores, and where, specifically, the interplay between bridge length and energy plays an important role for the donor-acceptor electronic coupling. For any application that relies on the transport of electrons, for example molecule based solar cells or molecular scale electronics, it will be imperative to predict the electron transfer capabilities of different molecular structures. The potential difficulties with making such predictions and the lack of suitable models are also discussed.
共价连接的供体-桥-受体组件中的电子和能量转移反应不仅强烈依赖于供体-受体距离,还依赖于桥的电子结构。在本文中,我们描述了一些特征明确的体系,其中桥是π共轭发色团,具体而言,桥长度与能量之间的相互作用对供体-受体电子耦合起着重要作用。对于任何依赖电子传输的应用,例如基于分子的太阳能电池或分子尺度电子学,预测不同分子结构的电子转移能力将是至关重要的。还讨论了进行此类预测时可能遇到的困难以及缺乏合适模型的问题。