Nano-Scale Engineering of Heterojunction for Alkaline Water Electrolysis

被引:5
作者
Chen, Yao [1 ]
Xu, Zhenbo [1 ]
Chen, George Zheng [2 ]
机构
[1] Wuhan Univ Sci & Technol, Fac Mat, State Key Lab Refractories & Met, Wuhan 430081, Peoples R China
[2] Univ Nottingham, Fac Engn, Dept Chem & Environm Engn, Nottingham NG2 7RD, England
基金
中国国家自然科学基金;
关键词
heterojunction; alkaline water electrolysis; HER; OER; d-band center; scaling relation; EFFICIENT OXYGEN EVOLUTION; REDUCED GRAPHENE OXIDE; HYDROGEN EVOLUTION; HIGHLY EFFICIENT; BIFUNCTIONAL ELECTROCATALYSTS; NI-FOAM; CATALYST; HETEROSTRUCTURES; NANOPARTICLES; NANOSHEETS;
D O I
10.3390/ma17010199
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Alkaline water electrolysis is promising for low-cost and scalable hydrogen production. Renewable energy-driven alkaline water electrolysis requires highly effective electrocatalysts for the hydrogen evolution reaction (HER) and the oxygen evolution reaction (OER). However, the most active electrocatalysts show orders of magnitude lower performance in alkaline electrolytes than that in acidic ones. To improve such catalysts, heterojunction engineering has been exploited as the most efficient strategy to overcome the activity limitations of the single component in the catalyst. In this review, the basic knowledge of alkaline water electrolysis and the catalytic mechanisms of heterojunctions are introduced. In the HER mechanisms, the ensemble effect emphasizes the multi-sites of different components to accelerate the various intermedium reactions, while the electronic effect refers to the d-band center theory associated with the adsorption and desorption energies of the intermediate products and catalyst. For the OER with multi-electron transfer, a scaling relation was established: the free energy difference between HOO* and HO* is 3.2 eV, which can be overcome by electrocatalysts with heterojunctions. The development of electrocatalysts with heterojunctions are summarized. Typically, Ni(OH)2/Pt, Ni/NiN3 and MoP/MoS2 are HER electrocatalysts, while Ir/Co(OH)2, NiFe(OH)x/FeS and Co9S8/Ni3S2 are OER ones. Last but not the least, the trend of future research is discussed, from an industry perspective, in terms of decreasing the number of noble metals, achieving more stable heterojunctions for longer service, adopting new craft technologies such as 3D printing and exploring revolutionary alternate alkaline water electrolysis.
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页数:28
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共 142 条
  • [61] Realizing efficient oxygen evolution at low overpotential via dopant-induced interfacial coupling enhancement effect
    Luo, Wei
    Yu, Yanli
    Wu, Yucheng
    Ma, Zemian
    Ma, Xueying
    Jiang, Yimin
    Shen, Wei
    He, Rongxing
    Su, Wei
    Li, Ming
    [J]. APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2023, 336
  • [62] Interface-vacancy synergy of Co(OH)2/CoN to boost alkaline water splitting
    Luo, Wei
    Gao, Qin
    Ma, Zemian
    Ma, Xueying
    Jiang, Yimin
    Shen, Wei
    He, Rongxing
    Su, Wei
    Li, Ming
    [J]. SCIENCE CHINA-MATERIALS, 2023, 66 (06) : 2246 - 2256
  • [63] Mn-doped nickel-iron phosphide heterointerface nanoflowers for efficient alkaline freshwater/seawater splitting at high current densities
    Luo, Yuanzhi
    Wang, Pan
    Zhang, Gaixia
    Wu, Sisi
    Chen, Zhangsen
    Ranganathan, Hariprasad
    Sun, Shuhui
    Shi, Zhicong
    [J]. CHEMICAL ENGINEERING JOURNAL, 2023, 454
  • [64] Induction of Co2P Growth on a MXene (Ti3C2Tx)-Modified Self-Supporting Electrode for Efficient Overall Water Splitting
    Lv, Zepeng
    Ma, Wansen
    Dang, Jie
    Wang, Meng
    Jian, Kailiang
    Liu, Dong
    Huang, Dejun
    [J]. JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2021, 12 (20) : 4841 - 4848
  • [65] Highly efficient hydrogen evolution triggered by a multi-interfacial Ni/WC hybrid electrocatalyst
    Ma, Yuan-Yuan
    Lang, Zhong-Ling
    Yan, Li-Kai
    Wang, Yong-Hui
    Tan, Hua-Qiao
    Feng, Kun
    Xia, Yu-Jian
    Zhong, Jun
    Liu, Yang
    Kang, Zhen-Hui
    Li, Yang-Guang
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (08) : 2114 - 2123
  • [66] Universality in Oxygen Evolution Electrocatalysis on Oxide Surfaces
    Man, Isabela C.
    Su, Hai-Yan
    Calle-Vallejo, Federico
    Hansen, Heine A.
    Martinez, Jose I.
    Inoglu, Nilay G.
    Kitchin, John
    Jaramillo, Thomas F.
    Norskov, Jens K.
    Rossmeisl, Jan
    [J]. CHEMCATCHEM, 2011, 3 (07) : 1159 - 1165
  • [67] Benchmarking Hydrogen Evolving Reaction and Oxygen Evolving Reaction Electrocatalysts for Solar Water Splitting Devices
    McCrory, Charles C. L.
    Jung, Suho
    Ferrer, Ivonne M.
    Chatman, Shawn M.
    Peters, Jonas C.
    Jaramillo, Thomas F.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2015, 137 (13) : 4347 - 4357
  • [68] From the Sabatier principle to a predictive theory of transition-metal heterogeneous catalysis
    Medford, Andrew J.
    Vojvodic, Aleksandra
    Hummelshoj, Jens S.
    Voss, Johannes
    Abild-Pedersen, Frank
    Studt, Felix
    Bligaard, Thomas
    Nilsson, Anders
    Norskov, Jens K.
    [J]. JOURNAL OF CATALYSIS, 2015, 328 : 36 - 42
  • [69] Hydrogen Production Technologies: From Fossil Fuels toward Renewable Sources. A Mini Review
    Megia, Pedro J.
    Vizcaino, Arturo J.
    Calles, Jose A.
    Carrero, Alicia
    [J]. ENERGY & FUELS, 2021, 35 (20) : 16403 - 16415
  • [70] Atomic Heterointerface-Induced Local Charge Distribution and Enhanced Water Adsorption Behavior in a Cobalt Phosphide Electrocatalyst for Self-Powered Highly Efficient Overall Water Splitting
    Meng, Tao
    Qin, Jinwen
    Xu, Dan
    Cao, Minhua
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (09) : 9023 - 9032