首页> 中文期刊> 《安徽地质》 >Electrochemical Surface Restructuring of Phosphorus-Doped Carbon@MoP Electrocatalysts for Hydrogen Evolution

Electrochemical Surface Restructuring of Phosphorus-Doped Carbon@MoP Electrocatalysts for Hydrogen Evolution

         

摘要

The hydrogen evolution reaction(HER) through electrocatalysis is promising for the production of clean hydrogen fuel. However,designing the structure of catalysts,controlling their electronic properties,and manipulating their catalytic sites are a significant challenge in this field. Here,we propose an electrochemical surface restructuring strategy to design synergistically interactive phosphorus-doped carbon@MoP electrocatalysts for the HER. A simple electrochemical cycling method is developed to tune the thickness of the carbon layers that cover on MoP core,which significantly influences HER performance. Experimental investigations and theoretical calculations indicate that the inactive surface carbon layers can be removed through electrochemical cycling,leading to a close bond between the MoP and a few layers of coated graphene. The electronsdonated by the MoP core enhance the adhesion and electronegativity of the carbon layers;the negatively charged carbon layers act as an active surface. The electrochemically induced optimization of the surface/interface electronic structures in the electrocatalysts significantly promotes the HER. Using this strategy endows the catalyst with excellent activity in terms of the HER in both acidic and alkaline environments(current density of 10 mA cm^(-2) at low overpotentials,of 68 mV in 0.5 M H_(2)SO_(4) and 67 mV in 1.0 M KOH).

著录项

  • 来源
    《安徽地质》 |2021年第12期|484-498|共15页
  • 作者单位

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    College of Chemical Engineering China University of Petroleum(East China) Huangdao District No.66 West Changjiang Road Qingdao 266580 People's Republic of China;

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    College of Chemical Engineering China University of Petroleum(East China) Huangdao District No.66 West Changjiang Road Qingdao 266580 People's Republic of China;

    College of Chemical Engineering China University of Petroleum(East China) Huangdao District No.66 West Changjiang Road Qingdao 266580 People's Republic of China;

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    School of Materials Science and Engineering Qilu University of Technology(Shandong Academy of Sciences) No.3501 Daxue Road Changqing District Jinan 250353 People's Republic of China;

    College of Chemical Engineering China University of Petroleum(East China) Huangdao District No.66 West Changjiang Road Qingdao 266580 People's Republic of China;

    Nanomaterials Centre School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology The University of Queensland St Lucia QLD 4072 Australia;

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