Recent Advances in Catalyst Materials for PEM Water Electrolysis

被引:0
|
作者
Ababao, Paula Marielle [1 ]
Oh, Ilwhan [1 ]
机构
[1] Kumoh Natl Inst Technol, Dept Appl Chem, Dept Energy Convergence Engn, Gumi, Gyeongbuk, South Korea
来源
关键词
Hydrogen Economy; Water Electrolysis; Renewable Energy; Catalyst; Oxygen Evolution Reaction; OXYGEN-EVOLUTION REACTION; CORE-SHELL; DOPED TIO2; SILVER NANOPARTICLES; REDUCTION REACTION; ANODE CATALYST; ACID-SOLUTIONS; TIN OXIDE; SUPPORT; IRIDIUM;
D O I
10.5229/JKES.2023.26.2.19
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Due to the intermittency of renewable energy sources, a need to store and transport energy will increase. Hydrogen production through water electrolysis will provide an excellent way to supplement the intermittency of renewable energy sources. While alkaline water electrolysis is currently the most mature technology, it has drawbacks of low current density, large footprint, gas crossover, etc. The PEM water electrolysis has potential to replace the alkaline electrolysis. However, expensive catalyst material used in the PEM electrolysis has been the bottleneck of widespread use. In this review, we have reviewed recent efforts to reduce catalyst loading in PEM water electrolysis. In core-shell nanostructures, the precious metal catalyst forms a shell while heteroatoms form a core. In this way, the catalyst loading can be significantly reduced while maintaining the catalytic activity. In another approach, a corrosion-resistant support is utilized, which provides a stable platform to impregnate precious metal catalyst.
引用
收藏
页码:19 / 34
页数:16
相关论文
共 50 条
  • [31] Non-conductive TiO2 as the anode catalyst support for PEM water electrolysis
    Mazur, Petr
    Polonsky, Jakub
    Paidar, Martin
    Bouzek, Karel
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (17) : 12081 - 12088
  • [32] Innovative anode catalyst designed to reduce the degradation in ozone generation via PEM water electrolysis
    Yu, Jyun-Wei
    Jung, Guo-Bin
    Chen, Chi-Wen
    Yeh, Chia-Chen
    Nguyen, Xuan-Vien
    Ma, Chia-Ching
    Hsieh, Chung-Wei
    Lin, Cheng-Lung
    RENEWABLE ENERGY, 2018, 129 : 800 - 805
  • [33] Recent advancements in catalyst coated membranes for water electrolysis: a critical review
    Vinodh, Rajangam
    Palanivel, Tamilazhagan
    Kalanur, Shankara Sharanappa
    Pollet, Bruno G.
    ENERGY ADVANCES, 2024, 3 (06): : 1144 - 1166
  • [34] Fabrication of membrane electrode assemblies by direct spray catalyst on water swollen Nafion membrane for PEM water electrolysis
    Shi, Yan
    Lu, Zhuoxin
    Guo, Lili
    Yan, Changfeng
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (42) : 26183 - 26191
  • [35] Conventional and Innovative Electrocatalysts for PEM Water Electrolysis
    Millet, P.
    POLYMER ELECTROLYTE FUEL CELLS 16 (PEFC 16), 2016, 75 (14): : 1073 - 1079
  • [36] Hydrogen production by PEM water electrolysis – A review
    Shiva Kumar S.
    Himabindu V.
    Materials Science for Energy Technologies, 2019, 2 (03): : 442 - 454
  • [37] An electrochemical study of a PEM stack for water electrolysis
    Siracusano, S.
    Baglio, V.
    Briguglio, N.
    Brunaccini, G.
    Di Blasi, A.
    Stassi, A.
    Ornelas, R.
    Trifoni, E.
    Antonucci, V.
    Arico, A. S.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (02) : 1939 - 1946
  • [38] Engineering Modeling of PEM Water Electrolysis: A survey
    Bensmann, B.
    Hanke-Rauschenbach, R.
    POLYMER ELECTROLYTE FUEL CELLS 16 (PEFC 16), 2016, 75 (14): : 1065 - 1072
  • [39] The impacts of membrane pinholes on PEM water electrolysis
    Liu, Chang
    Wrubel, Jacob
    Padgett, Elliot
    Bender, Guido
    JOURNAL OF POWER SOURCES, 2023, 581
  • [40] Review of hydrogen permeation in PEM water electrolysis
    Ye Q.
    Song J.
    Hou K.
    Guo Z.-Y.
    Xu G.-Z.
    Deng Z.-F.
    Li B.-R.
    Gongcheng Kexue Xuebao/Chinese Journal of Engineering, 2022, 44 (07): : 1274 - 1281