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用于制氢的阴离子交换膜电解槽的先进发展:从阴离子交换膜到膜电极组件。

Advanced development of anion-exchange membrane electrolyzers for hydrogen production: from anion-exchange membranes to membrane electrode assemblies.

作者信息

Lei Yun Chao, Zhou Jiayang, Zhou Wentao, Wang Yan, Zhang Mengyang, Zhang Anlei, Wang Longlu

机构信息

College of Electronic and Optical Engineering, Institute of Flexible Electronics (Future Technology), Nanjing University of Posts & Telecommunications (NJUPT), Nanjing 210023, Jiangsu, P. R. China.

College of Science, Nanjing University of Posts & Telecommunications (NJUPT), Nanjing 210023, Jiangsu, P. R. China.

出版信息

Chem Commun (Camb). 2024 Oct 1;60(79):11000-11016. doi: 10.1039/d4cc03043e.

DOI:10.1039/d4cc03043e
PMID:39262314
Abstract

Anion-exchange membrane water electrolysis (AEMWE) has attracted attention owing to its operation in alkaline environments, which offers the advantage of not requiring the use of precious metals. Additionally, AEMWE exhibits higher kinetics in the hydrogen evolution reaction, enabling higher hydrogen production efficiency. The anion-exchange membrane (AEM) fabrication, catalyst design, and membrane electrode assembly (MEA) are crucial for enhancing the total water electrolysis performance. There is an urgent need to summarize the advances in the development of AEMWE to pave the way for the commercialization of AEMWE. In this review, first, the fundamental principles of AEMWE technology are introduced. Second, the optimization of AEM with high ion conductivity and high stability through innovative synthetic methods are discussed in detail. Third, the designs of catalysts to increase the reaction rates by regulating the OH-adsorption environment and relieving OH blockage are introduced. Last but not least, a systematic summary of the concepts of 3D-ordered MEA, 3D-unified MEA, and 3D-self-supported MEA is presented. This review would be helpful to enhance the overall performance of AEMWE and promote the development of green hydrogen energy.

摘要

阴离子交换膜水电解(AEMWE)因其在碱性环境中运行而备受关注,这具有无需使用贵金属的优势。此外,AEMWE在析氢反应中表现出更高的动力学,从而实现更高的产氢效率。阴离子交换膜(AEM)的制备、催化剂设计和膜电极组件(MEA)对于提高整体水电解性能至关重要。迫切需要总结AEMWE开发方面的进展,为AEMWE的商业化铺平道路。在本综述中,首先介绍了AEMWE技术的基本原理。其次,详细讨论了通过创新合成方法对具有高离子电导率和高稳定性的AEM进行优化。第三,介绍了通过调节OH吸附环境和缓解OH堵塞来提高反应速率的催化剂设计。最后但同样重要的是,对三维有序MEA、三维统一MEA和三维自支撑MEA的概念进行了系统总结。本综述将有助于提高AEMWE的整体性能,并促进绿色氢能的发展。

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