4.7 Article

Predicted superior hydrogen evolution activities of MoC via surface dopant

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 28, 页码 13664-13673

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.02.119

关键词

Molybdenum carbide; Hydrogen evolution; Non-metal doping; Density functional theory

资金

  1. National Natural Science Foundation of China [21703081, 12174154, 11804090]
  2. Guangdong Basic and Applied Basic Research Foundation [2021A1515010090]
  3. Fundamental Research Funds for the Central University [21617330]
  4. Science and Technology Planning Project of Guangzhou, China [202102020963, 201605030008]

向作者/读者索取更多资源

This work investigates the effect of surface doping on the hydrogen evolution reaction (HER) activity of molybdenum carbides (MoC) using density functional theory (DFT). The study demonstrates that specific doping ranges can enhance the HER activity of MoC by modifying the hydrogen adsorption ability and charge redistribution.
Molybdenum carbides (MoC) are regarded as promising candidates for electrocatalytic hydrogen evolution reaction (HER) as their stabilities, high conductivities. Non-metallic doping is a robust way to enhance the HER activity of MoC in experiments, yet the systematic theoretical study is still lacking. In this work, we investigate the surface doping effect on HER activity of C-terminated gamma-MoC(100) by density functional theory (DFT). The thermodynamical stability and realistic catalytic surface of doped surfaces, including mono- and co-doping by three elements (N, P and S) with various doping ratios, are verified by formation energies and surface Pourbaix diagrams, respectively. According to the hydrogen adsorption ability on different coverage and the calculated exchange current densities (i(0)) of the doped surfaces, the surfaces doping in range of (P% > 60% and N% > 5%), (60% < N% <85% and P% < 25%), and (60% < N% < 85% and S% < 25%), show larger i(0) (i(0) > 4 mA/cm(2)). Especially the N/P co-doping g-MoC(100), their larger i(0) in greater range enables their promising excellent performance in hydrogen evolution in experiments. The improved HER activities of doped MoC(100) are ascribed to suitable hydrogen adsorption abilities tuned by suitable p(z)-band centers and the charge redistribution. Our DFT simulations provide more insight and guidance for improving the HER performance of electrode catalysts using non-metallic doping effects. (C) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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