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March 5, 2026Catalysts0 citationsOpen Access

Phase Engineering of Molybdenum Carbide via Vanadium Doping for Boosted Hydrogen Evolution Reaction in Water Electrolysis

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SLSongjie LiYLYuxin LiRJRenzhe Jin

Key Points

  • The aim is to enhance hydrogen production efficiency through optimized molybdenum carbide electrocatalysts via vanadium doping.
  • Fabrication of α-MoC1−x and α-MoC1−x/β-Mo2C electrocatalysts.
  • Optimization of hydrothermal and carbonization conditions for catalyst preparation.
  • Doping with vanadium to induce a phase transition from α to β in molybdenum carbide.
  • The V-MoxC catalyst achieved a β to α phase ratio of 0.827.
  • Overpotential at η10 decreased to 99 mV, indicating high efficiency.
  • Tafel slope of 65.1 mV dec−1 shows significant performance improvement.
  • Stability maintained for over 100 hours at a current density of 10 mA cm−2.

Abstract

Efficient and low-cost electrocatalysts play a crucial role in hydrogen production through the electrolysis of water. Molybdenum (Mo) carbide with a similar electronic structure to Pt was selected, and both α-MoC1−x and α-MoC1−x/β-Mo2C electrocatalysts were successfully fabricated for electrochemical hydrogen evolution. A continuous optimization of the hydrothermal and carbonization conditions was carried out for the preparation of α-MoC1−x. The biphasic molybdenum carbide catalysts were further achieved via vanadium doping with a phase transition of molybdenum carbide from α to β, which increased the specific surface area of the electrocatalyst. It was found that the V-MoxC catalyst obtained at a Mo/V molar addition ratio of 100:5 exhibited the best hydrogen production performance, with a β to α phase ratio of 0.827. The overpotential of V-MoxC at η10 decreased to 99 mV, and the Tafel slope reached 65.1 mV dec−1, indicating a significant improvement in performance compared to the undoped samples. Excellent stability was obtained for the as-prepared electrocatalyst for water splitting over 100 h at a current density of 10 mA cm−2.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69a91e1fd6127c7a504c1c4fhttps://doi.org/10.3390/catal16030234
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