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基于固体氧化还原介质的模块化电化学合成氢气和高附加值化学品的研究进展

Recent Progress in Modular Electrochemical Synthesis of Hydrogen and High-Value-added Chemicals based on Solid Redox Mediator.

作者信息

Yu Xueping, Feng Biao, Yao Min, Peng Juan, Yang Shubin

机构信息

College of Chemistry and Chemical Engineering, State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, Ningxia University, Yinchuan, 750021, P. R. China.

School of Materials Science and Engineering, Beihang University, Beijing, 100191, P. R. China.

出版信息

Small. 2025 Jul;21(28):e2310573. doi: 10.1002/smll.202310573. Epub 2024 Mar 7.

Abstract

Electrochemical synthesis of H and high-value-added chemicals is an efficient and cost-effective approach that can be powered using renewable electricity. Compared to a conventional electrochemical production system, the modular electrochemical production system (MEPS) based on a solid redox mediator (SRM) can separate the anodic and cathodic reactions in time and space. The MEPS can avoid the use of membranes and formation of useless products, as well as eliminate the mutual dependence of production rates at anode and cathode. The SRM can temporarily store or release electrons and ions to pair with cathodic and anodic reactions, respectively, in MEPS. Designing of SRMs with large charge capacity and good cyclability is of great significance for constructing a high-performance MEPS. This work summarizes the design principles, recent advances in MEPS based on SRM, and application in redox flow cells. Moreover, structure design strategies as well as in situ characterization techniques and theoretical calculations for SRM is also proposed. It is expected to promote the vigorous development of MEPS based on SRM. Finally, the challenges and perspectives of MEPS based on SRM are discussed.

摘要

通过电化学合成氢气和高附加值化学品是一种高效且经济高效的方法,可利用可再生电力供电。与传统的电化学生产系统相比,基于固体氧化还原介质(SRM)的模块化电化学生产系统(MEPS)能够在时间和空间上分离阳极和阴极反应。MEPS可以避免使用膜和无用产物的形成,同时消除阳极和阴极生产率之间的相互依赖。在MEPS中,SRM可以分别暂时存储或释放电子和离子,以与阴极和阳极反应配对。设计具有大电荷容量和良好循环性的SRM对于构建高性能MEPS具有重要意义。本文总结了设计原则、基于SRM的MEPS的最新进展及其在氧化还原液流电池中的应用。此外,还提出了SRM的结构设计策略以及原位表征技术和理论计算方法。期望能推动基于SRM的MEPS蓬勃发展。最后,讨论了基于SRM的MEPS面临的挑战和前景。

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