富土元素基析氧反应和氧还原反应电催化剂的研究进展

Xiaodong Chen, Zhiyuan Zhang, Ya Chen, Runjing Xu, Chunyu Song, Tiefeng Yuan, Wenshuai Tang, Xin Gao, N. Wang, Lifeng Cui
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摘要

析氧反应(OER)和氧还原反应(ORR)是电化学水分解装置和再生燃料电池等绿色电化学储能和转化技术中至关重要的半反应。研究人员一直致力于合成富土元素基纳米材料作为高效电催化剂,实现其工业应用。本文综述了电化学过程中OER和ORR的基本机理。然后,系统总结了近年来具有代表性的无金属碳基电催化剂的研究进展;metal-nitrogen-C electrocatalysts;非贵金属OER/ORR电催化剂,包括过渡金属氧化物、磷化物、氮化物/氧氮化物、硫族化物和碳化物。其中介绍了几种具有代表性的OER/ORR双功能电催化剂。特别地,我们讨论了物理化学性质-形貌,相,结晶度,组成,缺陷,杂原子掺杂和应变工程-对上述电催化剂综合性能的影响,目的是建立电催化剂的纳米结构-功能关系。此外,确定并强调了OER和ORR电催化剂的发展方向。本文综述的通用方法拓展了OER/ORR电催化剂的研究领域,为开发高效OER/ORR电催化剂提供了启示。
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Research advances in earth-abundant-element-based electrocatalysts for oxygen evolution reaction and oxygen reduction reaction
The oxygen evolution reaction (OER) and oxygen reduction reaction (ORR) are crucial half-reactions of green electrochemical energy storage and conversion technologies, such as electrochemical water-splitting devices and regenerative fuel cells. Researchers always committed to synthesizing earth-abundant-element-based nanomaterials as high-efficiency electrocatalysts for realizing their industrial applications. In this review, we briefly elaborate on the underlying mechanisms of OER and ORR during the electrochemical process. Then, we systematically sum up the recent research progress in representative metal-free carbon (C)-based electrocatalysts; metal-nitrogen-C electrocatalysts; and nonprecious-metal OER/ORR electrocatalysts, including transition-metal oxides, phosphides, nitrides/oxynitrides, chalcogenides, and carbides. Among these, some representative bifunctional electrocatalysts for the OER/ORR are mentioned. In particular, we discuss the effects of physicochemical properties-morphology, phases, crystallinity, composition, defects, heteroatom doping, and strain engineering-on the comprehensive performance of the abovementioned electrocatalysts, with the aim of establishing the nanostructure-function relationships of the electrocatalysts. In addition, the development directions of OER and ORR electrocatalysts are determined and highlighted. The generic approach in this review expands the frontiers of and provides inspiration for developing high-efficiency OER/ORR electrocatalysts.
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