4.6 Article

Probing the active sites of site-specific nitrogen doping in metal-free graphdiyne for electrochemical oxygen reduction reactions

Journal

SCIENCE BULLETIN
Volume 65, Issue 1, Pages 45-54

Publisher

ELSEVIER
DOI: 10.1016/j.scib.2019.10.016

Keywords

Graphdiyne (GDY); Site-specific nitrogen doping; Metal-free catalysts; Oxygen reduction reaction (ORR)

Funding

  1. Young Scientists Fund of the National Natural Science Foundation of China [11604249]
  2. Fok Ying-Tong Education Foundation for Young Teachers in the Higher Education Institutions of China [161008]
  3. Foundation of the State Key Laboratory of Optical Fiber and Cable Manufacture Technology [SKLD1602]
  4. Fundamental Research Funds for the Central Universities [2019-III-034]
  5. Research Board of the State Key Laboratory of Silicate Materials for Architectures
  6. Xiamen University Malaysia
  7. Xiamen University Malaysia Research Fund [XMUMRF/2019-C3/IENG/0013]
  8. State Key Laboratory of Refractors and Metallurgy [G201605]

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The development of highly active and low-cost catalysts for electrochemical reactions is one of the most attractive topics in the renewable energy technology. Herein, the site-specific nitrogen doping of graphdiyne (GDY) including grap-N, sp-N(I) and sp-N(II) GDY is systematically investigated as metal-free oxygen reduction electrocatalysts via density functional theory (DFT). Our results indicate that the doped nitrogen atom can significantly improve the oxygen (O-2) adsorption activity of GDY through activating its neighboring carbon atoms. The free-energy landscape is employed to describe the electrochemical oxygen reduction reaction (ORR) in both O-2 dissociation and association mechanisms. It is revealed that the association mechanism can provide higher ORR onset potential than dissociation mechanism on most of the substrates. Especially, sp-N(II) GDY exhibits the highest ORR electrocatalytic activity through increasing the theoretical onset potential to 0.76 V. This work provides an atomic-level insight for the electrochemical ORR mechanism on metal-free N-doped GDY. (C) 2019 Science China Press. Published by Elsevier B.V. and Science China Press. All rights reserved.

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