4.8 Article

Ultrathin N-Doped Mo2C Nanosheets with Exposed Active Sites as Efficient Electrocatalyst for Hydrogen Evolution Reactions

期刊

ACS NANO
卷 11, 期 12, 页码 12509-12518

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.7b06607

关键词

molybdenum carbide; nanosheet; nitrogen doping density functional theory; hydrogen evolution reaction

资金

  1. Tip-top Scientific and Technical Innovative Youth Talents of Guangdong Special Support Program [2016TQ03N541]
  2. Guangdong Natural Science Funds for Distinguished Young Scholar [2017B030306001]
  3. National Natural Science Foundation of China [51502096]
  4. Guangdong Innovative and Entrepreneurial Research Team Program [2014ZT05N200]

向作者/读者索取更多资源

Probing competent electrocatalysts for hydrogen evolution reaction (HER) of water splitting is one of the most hopeful approaches to confront the energy and environmental crisis. Herein, we highlight ultrathin N-doped Mo2C nanosheets (N-Mo2C NSs) in the role of greatly efficient platinum free-based electrocatalysts for the HER. The transformation of crystal phase and structure between MoO2 nanosheets with a thickness of similar to 1.1 nm and N-Mo2C NSs with a thickness of similar to 1.0 nm is studied in detail. Structural analyses make clear that the surfaces of the N-Mo2C NSs are absolutely encompassed by apical Mo atoms, hence affording an ideal catalyst prototype to expose the role of Mo atoms for the duration of HER catalysis. Theoretical calculations demonstrate that the nanosheet structure, N doping, and particular crystalline phase of Mo2C produce more exposed Mo active sites, including Mo atoms on the C plane and doped N atoms. Through detailed electrochemical investigations, N-Mo2C NSs possess HER activity with an onset potential of -48.3 mV vs RHE, Tafel slope of 44.5 mV dec(-1), and overpotential of 99 mV vs RHE at the cathodic current density of 10 mA cm(-2) with excellent long-term stability. Lastly, the calcination temperature and dicyandiamide amount can obviously affect the phase transformation and surface structure of molybdenum carbide, resulting in an adjustable HER activity. This synthesis mechanism-will facilitate the understanding and optimization of Mo-based electrocatalysts in the energy conversion field.

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