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太阳能的光合作用之外的利用。

Solar utilization beyond photosynthesis.

机构信息

College of Electronics and Information Science, Fujian Jiangxia University, Fuzhou, P. R. China.

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, P. R. China.

出版信息

Nat Rev Chem. 2023 Feb;7(2):91-105. doi: 10.1038/s41570-022-00448-9. Epub 2022 Dec 19.

Abstract

Natural photosynthesis is an efficient biochemical process which converts solar energy into energy-rich carbohydrates. By understanding the key photoelectrochemical processes and mechanisms that underpin natural photosynthesis, advanced solar utilization technologies have been developed that may be used to provide sustainable energy to help address climate change. The processes of light harvesting, catalysis and energy storage in natural photosynthesis have inspired photovoltaics, photoelectrocatalysis and photo-rechargeable battery technologies. In this Review, we describe how advanced solar utilization technologies have drawn inspiration from natural photosynthesis, to find sustainable solutions to the challenges faced by modern society. We summarize the uses of advanced solar utilization technologies, such as converting solar energy to electrical and chemical energy, electrochemical storage and conversion, and associated thermal tandem technologies. Both the foundational mechanisms and typical materials and devices are reported. Finally, potential future solar utilization technologies are presented that may mimic, and even outperform, natural photosynthesis.

摘要

自然光合作用是一种将太阳能转化为富含能量的碳水化合物的高效生化过程。通过了解支撑自然光合作用的关键光电化学过程和机制,已经开发出先进的太阳能利用技术,这些技术可用于提供可持续能源,以帮助应对气候变化。自然光合作用中的光捕获、催化和储能过程启发了光伏、光电催化和光可再充电电池技术。在这篇综述中,我们描述了先进的太阳能利用技术如何从自然光合作用中汲取灵感,为现代社会所面临的挑战寻找可持续的解决方案。我们总结了先进的太阳能利用技术的用途,例如将太阳能转化为电能和化学能、电化学储存和转换以及相关的热串联技术。报告了基础机制以及典型的材料和设备。最后,提出了可能模仿甚至超越自然光合作用的潜在未来太阳能利用技术。

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