Interfacing metals and compounds for enhanced hydrogen evolution from water splitting

被引:0
|
作者
Jian-Hong Tang
Yujie Sun
机构
[1] University of Cincinnati,
来源
MRS Bulletin | 2020年 / 45卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Hydrogen production from water electrolysis with renewable energy input has been the focus of tremendous attention, as hydrogen is widely advocated as a clean energy carrier. In order to realize large-scale hydrogen generation from water splitting, it is essential to develop competent and robust electrocatalysts that will substantially decrease the overpotential requirement and improve energy efficiency. Recent advances in electrocatalyst design reveal that interfacial engineering is an effective approach in tuning the adsorption-desorption abilities of key catalytic intermediates on active sites, accelerating electron transfer, and stabilizing the active sites for long-term operation. Consequently, a large number of hybrid electrocatalysts consisting of metal/compound interfaces have been demonstrated to exhibit superior performance for electrocatalytic hydrogen evolution from water. This article highlights examples of these hybrid electrocatalysts, including noble metal and non-noble metal candidates interfaced with a variety of compounds. Specific emphasis is placed on the synthetic methods, reaction mechanisms, and electrocatalytic activities, which are envisioned to inspire the design and development of further improved electrocatalysts for hydrogen evolution from water splitting on an industrial scale.
引用
收藏
页码:548 / 554
页数:6
相关论文
共 50 条
  • [41] Hydrogen evolution from photocatalytic water splitting by LaMnO3 modified with amorphous CoSx
    Min Mao
    Jing Xu
    Yanru Li
    Zeying Liu
    Journal of Materials Science, 2020, 55 : 3521 - 3537
  • [42] Hydrogen evolution from photocatalytic water splitting by LaMnO3 modified with amorphous CoSx
    Mao, Min
    Xu, Jing
    Li, Yanru
    Liu, Zeying
    JOURNAL OF MATERIALS SCIENCE, 2020, 55 (08) : 3521 - 3537
  • [43] The use of products from CO2 photoreduction for improvement of hydrogen evolution in water splitting
    Yang, Xiaoyi
    Xiao, Tiancun
    Edwards, Peter P.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (11) : 6546 - 6552
  • [44] Decoupled catalytic hydrogen evolution from a molecular metal oxide redox mediator in water splitting
    Rausch, Benjamin
    Symes, Mark D.
    Chisholm, Greig
    Cronin, Leroy
    SCIENCE, 2014, 345 (6202) : 1326 - 1330
  • [45] Photocatalytic properties of Pd/TiO2 nanosheets for hydrogen evolution from water splitting
    Wu, Junjie
    Lu, Shuanglong
    Ge, Danhua
    Zhang, Longzhu
    Chen, Wei
    Gu, Hongwei
    RSC ADVANCES, 2016, 6 (72): : 67502 - 67508
  • [46] Enhanced photocatalytic hydrogen evolution from water splitting by Z-schemeCdS/BiFeO3heterojunction without using sacrificial agent
    Kolivand, Amin
    Sharifnia, Shahram
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (02) : 2739 - 2752
  • [47] Green hydrogen production by water splitting using scrap metals at high temperature
    Harikrishna, R. B.
    Deka, Hemagni
    Sundararajan, T.
    Rao, G. Ranga
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 49 : 1133 - 1138
  • [48] Enhanced photocatalytic splitting of photothermally induced water vapor to evolve hydrogen
    Han, Hongtao
    Huang, Kelei
    Yao, Yuan
    Li, Zizhen
    Meng, Xiangchao
    CHEMICAL ENGINEERING JOURNAL, 2022, 450
  • [49] Activity and stability of cobalt phosphides for hydrogen evolution upon water splitting
    Ha, Don-Hyung
    Han, Binghong
    Risch, Marcel
    Giordano, Livia
    Yao, Koffi P. C.
    Karayaylali, Pinar
    Shao-Horn, Yang
    NANO ENERGY, 2016, 29 : 37 - 45
  • [50] Graphene supported plasmonic photocatalyst for hydrogen evolution in photocatalytic water splitting
    Singh, G. P.
    Shrestha, K. M.
    Nepal, A.
    Klabunde, K. J.
    Sorensen, C. M.
    NANOTECHNOLOGY, 2014, 25 (26)