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金属-有机配位超分子体系的受限环境中的电子转移。

Electron transfer in the confined environments of metal-organic coordination supramolecular systems.

机构信息

State Key Laboratory of Fine Chemicals, Zhang Dayu School of Chemistry, Dalian University of Technology, Dalian 116024, China.

出版信息

Chem Soc Rev. 2020 Aug 7;49(15):5561-5600. doi: 10.1039/c9cs00917e. Epub 2020 Jul 9.

Abstract

The incorporation of electron transfer pairs in both ground and excited states (including electron transfer pairs in excited states and hydrogen or oxygen transfer pairs in ground states) into redox-active hosts with electronic acceptor or donor guests has led to development of a novel method of mimicking the photophysical properties and redox reactions of naturally occurring enzymatic systems. This occurs within the confined microenvironments of metal-organic capsules and metal-organic frameworks. These two types of coordination supramolecular host-guest systems can dock and separate electronic donor-acceptor pairs via closed through-space separation. Electron transfer within confined cavities, which is mainly controlled by spatial and kinetic effects, does not utilize a through-bond electron transfer pathway. In this review, we provide an overview of significant progress in the photophysical and catalytic applications of supramolecular host-guest systems with electron-transfer processes in confined environments. Special emphasis is placed on the action modes and regulatory factors that affect electron transfer between different components to produce enhanced photophysical or redox catalytic performance. Finally, the prospects for confined-environment electron transfer, its application to photophysics and catalysis, and the remaining challenges in this field are highlighted.

摘要

将电子转移对(包括激发态中的电子转移对和基态中的氢或氧转移对)纳入具有电子受体或供体客体的氧化还原活性主体中,这使得模拟天然酶系统的光物理性质和氧化还原反应的新方法成为可能。这发生在金属有机胶囊和金属有机框架的受限微环境中。这两种类型的配位超分子主客体体系可以通过封闭的空间分离来对接和分离电子给体-受体对。受限腔体内的电子转移主要受空间和动力学效应的控制,不利用通过键的电子转移途径。在这篇综述中,我们概述了在具有受限环境中电子转移过程的超分子主客体体系的光物理和催化应用方面的重要进展。特别强调了影响不同组件之间电子转移的作用模式和调节因素,以产生增强的光物理或氧化还原催化性能。最后,突出了受限环境电子转移的前景、它在光物理和催化中的应用以及该领域中仍然存在的挑战。

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