Journal of Inorganic Materials, Volume. 39, Issue 11, 1265(2024)

High-entropy Phosphide Bifunctional Catalyst: Preparation and Performance of Efficient Water Splitting

Wenyu ZHANG1,2,3, Ruihua GUO1,2,3、*, Quanxin YUE1,2,3, Yarong HUANG1, Guofang ZHANG1, and Lili GUAN1,2
Author Affiliations
  • 11. School of Materials Science and Engineering, Inner Mongolia University of Science & Technology, Baotou 014010, China
  • 22. Inner Mongolia Key Laboratory of Advanced Ceramic Materials and Devices, Inner Mongolia University of Science & Technology, Baotou 014010, China
  • 33. Key Laboratory of Green Extraction & Efficient Utilization of Light Rare-Earth Resources, Ministry of Education, Inner Mongolia University of Science & Technology, Baotou 014010, China
  • show less
    References(39)

    [1] STAFFELL I, SCAMMAN D, ABAD V A et al. The role of hydrogen and fuel cells in the global energy system[J]. Energy & Environmental Science, 463(2019).

    [3] ANWAR S, KHAN F, ZHANG Y et al. Recent development in electrocatalysts for hydrogen production through water electrolysis[J]. International Journal of Hydrogen Energy, 32284(2021).

    [5] CHEN P C, LIU M, DU J S et al. Interface and heterostructure design in polyelemental nanoparticles[J]. Science, 959(2019).

    [7] YAN L, CAO L, DAI P et al. Metal-organic frameworks derived nanotube of nickel-cobalt bimetal phosphides as highly efficient electrocatalysts for overall water splitting[J]. Advanced Functional Materials, 1703455(2017).

    [8] ZHAO Y, JIA N, WU X R et al. Rhodium phosphide ultrathin nanosheets for hydrazine oxidation boosted electrochemical water splitting[J]. Applied Catalysis B: Environmental, 118880(2020).

    [9] YANG X, GUO R, CAI R et al. Engineering high-entropy materials for electrocatalytic water splitting[J]. International Journal of Hydrogen Energy, 13561(2022).

    [10] SUN M, LIU H, QU J et al. Earth-rich transition metal phosphide for energy conversion and storage[J]. Advanced Energy Materials, 1600087(2016).

    [11] WU R, XIAO B, GAO Q et al. A Janus nickel cobalt phosphide catalyst for high-efficiency neutral-pH water splitting[J]. Angewandte Chemie International Edition, 15445(2018).

    [12] TIAN L, YAN X, CHEN X. Electrochemical activity of iron phosphide nanoparticles in hydrogen evolution reaction[J]. ACS Catalysis, 5441(2016).

    [13] LAI D, KANG Q, GAO F et al. High-entropy effect of a metal phosphide on enhanced overall water splitting performance[J]. Journal of Materials Chemistry A, 17913(2021).

    [14] WANG X, DONG Q, QIAO H et al. Continuous synthesis of hollow high-entropy nanoparticles for energy and catalysis applications[J]. Advanced Materials, 2002853(2020).

    [15] JING X X, CHEN B Q, ZHAI J X. Ni-Co-B-RE (Sm, Dy, Tb) Composite electrodes: preparation by chemical deposition method and their electrocatalytic hydrogen evolution performance[J]. Journal of Inorganic Materials, 467(2024).

    [16] SIVANANTHAM A, LEE H, HWANG S W et al. Preparation, electrical and electrochemical characterizations of CuCoNiFeMn high-entropy-alloy for overall water splitting at neutral-pH[J]. Journal of Materials Chemistry A, 16841(2021).

    [17] LI M, MEI S, ZHENG Y et al. High-entropy oxides as photocatalysts for organic conversion[J]. Chemical Communications, 13478(2023).

    [18] HUANG K, ZHANG B, WU J et al. Exploring the impact of atomic lattice deformation on oxygen evolution reactions based on a sub-5 nm pure face-centred cubic high-entropy alloy electrocatalyst[J]. Journal of Materials Chemistry A, 11938(2020).

    [19] HUANG K, PENG D, YAO Z et al. Cathodic plasma driven self- assembly of HEAs dendrites by pure single FCC FeCoNiMnCu nanoparticles as high efficient electrocatalysts for OER[J]. Chemical Engineering Journal, 131533(2021).

    [21] SONG H, WU M, TANG Z et al. Single atom ruthenium-doped CoP/CDs nanosheets via splicing of carbon-dots for robust hydrogen production[J]. Angewandte Chemie International Edition, 7234(2021).

    [23] WANG X, ZHANG J, WANG P et al. Terbium-induced cobalt valence-band narrowing boosts electrocatalytic oxygen reduction[J]. Energy & Environmental Science, 5500(2023).

    [24] WANG Y, TAO S, LIN H et al. Atomically targeting NiFe LDH to create multivacancies for OER catalysis with a small organic anchor[J]. Nano Energy, 105606(2021).

    [25] JIN L, WANG Q, WANG K et al. Engineering NiMoO4/NiFe LDH/rGO multicomponent nanosheets toward enhanced electrocatalytic oxygen evolution reaction[J]. Dalton Transactions, 6448(2022).

    [26] LV Q, YAO B, ZHANG W et al. Controlled direct electrodeposition of crystalline NiFe/amorphous NiFe-(oxy)hydroxide on NiMo alloy as a highly efficient bifunctional electrocatalyst for overall water splitting[J]. Chemical Engineering Journal, 137420(2022).

    [27] LUO M, ZHAO Z, ZHANG Y et al. PdMo bimetallene for oxygen reduction catalysis[J]. Nature, 81(2019).

    [28] XU H, WANG B, SHAN C et al. Ce-doped NiFe-layered double hydroxide ultrathin nanosheets/nanocarbon hierarchical nanocomposite as an efficient oxygen evolution catalyst[J]. ACS Applied Materials & Interfaces, 6336(2018).

    [29] HA D H, HAN B, RISCH M et al. Activity and stability of cobalt phosphides for hydrogen evolution upon water splitting[J]. Nano Energy, 37(2016).

    [30] TAO H B, XU Y, HUANG X et al. A general method to probe oxygen evolution intermediates at operating conditions[J]. Joule, 1498(2019).

    [31] ZHANG Y, ZHU X, ZHANG G et al. Rational catalyst design for oxygen evolution under acidic conditions: strategies toward enhanced electrocatalytic performance[J]. Journal of Materials Chemistry A, 5890(2021).

    [32] BIAN H, QI P, XIE G et al. HEA-NiFeCuCoCe/NF through ultra-fast electrochemical self-reconstruction with high catalytic activity and corrosion resistance for seawater electrolysis[J]. Chemical Engineering Journal, 147286(2023).

    [33] CONG Y, CHEN X, MEI Y et al. CeO2 decorated bimetallic phosphide nanowire arrays for enhanced oxygen evolution reaction electrocatalysis via interface engineering[J]. Dalton Transactions, 2923(2022).

    [34] WANG A J, CHEN J, ZHANG P F et al. Relation between NiMo(O) phase structures and hydrogen evolution activities of water electrolysis[J]. Acta Physico-Chimica Sinica, 2301023(2023).

    [36] WANG S, HUO W, FANG F et al. High entropy alloy/C nanoparticles derived from polymetallic MOF as promising electrocatalysts for alkaline oxygen evolution reaction[J]. Chemical Engineering Journal, 132410(2022).

    [37] HUO X, ZUO X, WANG X et al. High entropy alloy CoCrFeNiMo reinforced electrocatalytic performance for high-efficient electrocatalytic water splitting[J]. Chemistry-An Asian Journal, e202300456(2023).

    [38] LEI Y, ZHANG L, XU W et al. Carbon-supported high-entropy Co-Zn-Cd-Cu-Mn sulfide nanoarrays promise high-performance overall water splitting[J]. Nano Research, 6054(2022).

    [39] WANG Z, HAN S, ZHANG Y et al. Decorated NiFeOOH on high entropy perovskite oxide by interface engineering for efficient oxygen evolution and overall water splitting[J]. Fuel, 129946(2024).

    Tools

    Get Citation

    Copy Citation Text

    Wenyu ZHANG, Ruihua GUO, Quanxin YUE, Yarong HUANG, Guofang ZHANG, Lili GUAN. High-entropy Phosphide Bifunctional Catalyst: Preparation and Performance of Efficient Water Splitting[J]. Journal of Inorganic Materials, 2024, 39(11): 1265

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: Feb. 21, 2024

    Accepted: --

    Published Online: Jan. 21, 2025

    The Author Email: Ruihua GUO (grh7810@163.com)

    DOI:10.15541/jim20240074

    Topics