Electrocatalyst engineering and structure-activity relationship in hydrogen evolution reaction: From nanostructures to single atoms析氢反应中电催化剂设计与构效关系: 从纳米结构到单原子

被引:0
作者
Yuan Pan
Chao Zhang
Yan Lin
Zhi Liu
Minmin Wang
Chen Chen
机构
[1] China University of Petroleum (East China),State Key Laboratory of Heavy Oil Processing
[2] Tsinghua University,Department of Chemistry
[3] China University of Petroleum (East China),College of Science
来源
Science China Materials | 2020年 / 63卷
关键词
electrocatalyst; structure-activity relationship; hydrogen evolution reaction; nanomaterials; single-atom site catalysts;
D O I
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中图分类号
学科分类号
摘要
With the ever-pressing issues of global energy demand and environmental pollution, molecular hydrogen has been receiving increasing attention as a clean alternative energy carrier. For hydrogen production, the design and development of high-performance catalysts remains rather challenging. As the compositions and structures of catalyst interfaces have paramount influences on the catalytic performances, the central topic here has always been to design and engineer the interface structures via rational routes so as to boost the activities and stabilities of electrocatalysts on hydrogen evolution reaction (HER). Here in this review, we focus on the design and preparation of multi-scale catalysts specifically catering to HER applications. We start from the design and structure-activity relationship of catalytic nanostructures, summarize the research progresses related to HER nanocatalysts, and interpret their high activities from the atomistic perspective; then, we review the studies regarding the design, preparation, HER applications and structure-activity relationship of single-atom site catalysts (SASCs), and thereupon discuss the future directions in designing HER-oriented SASCs. At the end of this review, we present an outlook on the development trends and faced challenges of catalysts for electrochemical HER.
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页码:921 / 948
页数:27
相关论文
共 430 条
[1]  
Turner J A(2004)Sustainable hydrogen production Science 305 972-974
[2]  
Zheng Y(2015)Engineering of carbon-based electro-catalysts for emerging energy conversion: From fundamentality to functionality Adv M ater 27 5372-5378
[3]  
Jiao Y(2016)Recent advances in transition metal phosphide nanomaterials: Synthesis and applications in hydrogen evolution reaction Chem S oc Rev 45 1529-1541
[4]  
Qiao S Z(2019)Solid-state synthesis of MoS Sci China Mater 62 965-972
[5]  
Shi Y(2017) nanorod from molybdenum-organic framework for efficient hydrogen evolution reaction Nat Commun 8 15131-15137
[6]  
Zhang B(2015)Platinum-nickel alloy excavated nano-multipods with hexagonal close-packed structure and superior activity towards hydrogen evolution reaction Chem Soc Rev 44 5148-5180
[7]  
Yi J D(2015)Noble metal-free hydrogen evolution catalysts for water splitting J Mater Chem A 3 14942-14962
[8]  
Liu T T(2009)Recent advances in heterogeneous electrocatalysts for the hydrogen evolution reaction Nano Today 4 81-95
[9]  
Huang Y B(2015)Shape-controlled synthesis of platinum nanocrystals for catalytic and electrocatalytic applications Adv Funct Mater 25 1737-1744
[10]  
Cao Z(2014)Under-water superaerophobic pine-shaped Pt nanoarray electrode for ultrahigh-performance hydrogen evolution Angew Chem Int Ed 53 12120-12124