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分子线中的光致电荷和能量转移。

Photoinduced charge and energy transfer in molecular wires.

机构信息

Department of Chemical and Biological Engineering/Physical Chemistry, Chalmers University of Technology, 412 96 Göteborg, Sweden.

出版信息

Chem Soc Rev. 2015 Feb 21;44(4):845-62. doi: 10.1039/c4cs00221k.

Abstract

Exploring charge and energy transport in donor-bridge-acceptor systems is an important research field which is essential for the fundamental knowledge necessary to develop future applications. These studies help creating valuable knowledge to respond to today's challenges to develop functionalized molecular systems for artificial photosynthesis, photovoltaics or molecular scale electronics. This tutorial review focuses on photo-induced charge/energy transfer in covalently linked donor-bridge-acceptor (D-B-A) systems. Of utmost importance in such systems is to understand how to control signal transmission, i.e. how fast electrons or excitation energy could be transferred between the donor and acceptor and the role played by the bridge (the "molecular wire"). After a brief description of the electron and energy transfer theory, we aim to give a simple yet accurate picture of the complex role played by the bridge to sustain donor-acceptor electronic communication. Special emphasis is put on understanding bridge energetics and conformational dynamics effects on the distance dependence of the donor-acceptor electronic coupling and transfer rates. Several examples of donor-bridge-acceptor systems from the literature are described as a support to the discussion. Finally, porphyrin-based molecular wires are introduced, and the relationship between their electronic structure and photophysical properties is outlined. In strongly conjugated porphyrin systems, limitations of the existing electron transfer theory to interpret the distance dependence of the transfer rates are also discussed.

摘要

探索供体-桥-受体(D-B-A)体系中的电荷和能量输运是一个重要的研究领域,对于开发未来应用所需的基础知识至关重要。这些研究有助于创造有价值的知识,以应对当今的挑战,开发用于人工光合作用、光伏或分子尺度电子学的功能化分子系统。本综述重点介绍了共价连接的供体-桥-受体(D-B-A)体系中的光致电荷/能量转移。在这样的体系中,最重要的是要了解如何控制信号传输,即电子或激发能量在供体和受体之间以及桥(“分子导线”)所起的作用之间可以多快地转移。在简要描述电子和能量转移理论之后,我们旨在对桥在维持供体-受体电子通信方面所起的复杂作用给出一个简单而准确的描述。特别强调理解桥的能态和构象动力学效应对供体-受体电子耦合和转移速率随距离变化的影响。文献中描述了几个供体-桥-受体体系的例子,作为讨论的支持。最后,介绍了基于卟啉的分子导线,并概述了它们的电子结构与光物理性质之间的关系。在强共轭卟啉体系中,还讨论了现有电子转移理论在解释转移速率随距离变化的局限性。

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