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通过分子循环实现人工光合作用系统:用于再生有机牺牲电子供体的光化学和电化学方法综述。

Enabling artificial photosynthesis systems with molecular recycling: A review of photo- and electrochemical methods for regenerating organic sacrificial electron donors.

作者信息

Lowe Grace A

机构信息

van 't Hoff Institute for Molecular Sciences (HIMS), Universiteit van Amsterdam (UvA), Science Park 904, Amsterdam, 1098 XH, The Netherlands.

出版信息

Beilstein J Org Chem. 2023 Aug 8;19:1198-1215. doi: 10.3762/bjoc.19.88. eCollection 2023.

Abstract

This review surveys advances in the literature that impact organic sacrificial electron donor recycling in artificial photosynthesis. Systems for photocatalytic carbon dioxide reduction are optimized using sacrificial electron donors. One strategy for coupling carbon dioxide reduction and water oxidation to achieve artificial photosynthesis is to use a redox mediator, or recyclable electron donor. This review highlights photo- and electrochemical methods for recycling amines and NADH analogues that can be used as electron donors in artificial photosynthesis. Important properties of sacrificial donors and recycling strategies are also discussed. Compounds from other fields, such as redox flow batteries and decoupled water splitting research, are introduced as alternative recyclable sacrificial electron donors and their oxidation potentials are compared to the redox potentials of some model photosensitizers. The aim of this review is to act as a reference for researchers developing photocatalytic systems with sacrificial electron donors, and for researchers interested in designing new redox mediator and recyclable electron donor species.

摘要

本综述概述了文献中对人工光合作用中有机牺牲电子供体循环利用有影响的进展。光催化二氧化碳还原系统利用牺牲电子供体进行了优化。将二氧化碳还原与水氧化相耦合以实现人工光合作用的一种策略是使用氧化还原介质或可循环电子供体。本综述重点介绍了用于循环利用胺类和NADH类似物的光化学和电化学方法,这些物质可在人工光合作用中用作电子供体。还讨论了牺牲供体的重要性质和循环利用策略。来自其他领域的化合物,如氧化还原液流电池和非耦合水分解研究中的化合物,被作为替代的可循环牺牲电子供体引入,并将它们的氧化电位与一些模型光敏剂的氧化还原电位进行了比较。本综述的目的是为开发具有牺牲电子供体的光催化系统的研究人员以及对设计新型氧化还原介质和可循环电子供体物种感兴趣的研究人员提供参考。

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