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Construction of porous N-doped graphene layer for efficient oxygen reduction reaction

  • Xiaofang Chen
  • , Yan Liang
  • , Li Wan
  • , Zongli Xie
  • , Christopher D. Easton
  • , Laure Bourgeois
  • , Ziyu Wang
  • , Qiaoliang Bao
  • , Yonggang Zhu
  • , Shanwen Tao
  • , Huanting Wang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Graphitic carbon materials have shown great potential for use as high-performance catalysts for electrochemical reactions and devices. In this work, we developed a simple and versatile method for synthesis of porous N-doped graphene layers (NGS) by high-temperature treatment of chitosan film deposited on the graphitic carbon nitride (g-C3N4) nanosheets. In the sandwiched chitosan/g-C3N4/chitosan structure, the g-C3N4 nanosheet served as a substrate for chitosan film. The pyrolysis of this substrate, g-C3N4 nanosheet, prevented the severe agglomeration of as-carbonized chitosan sheets and resulted the porous structure. The BET surface area, micropore volume, nitrogen content and graphitic level of result sample highly depended on the heat-treatment temperature. The NGS synthesized at 1000 °C (NGS-1000) exhibited an ultrahigh specific surface area (1183 m2 g−1) and high nitrogen content (4.12%). Importantly, NGS-1000 exhibited a higher limiting current density (5.8 mA cm−2) and a greater stability than the commercial Pt/C electrocatalyst in alkaline media for oxygen reduction reaction (ORR). Such excellent electrocatalytic performance can be explained by a balanced combination of appropriate nitrogen doping level, the degree of graphitization, porous structure, and high specific surface area.

Original languageEnglish
Pages (from-to)36-44
Number of pages9
JournalChemical Engineering Science
Volume194
DOIs
StatePublished - 2 Feb 2019
Externally publishedYes

Keywords

  • Electrocatalytic activity
  • Microporous N-doped graphene
  • Nitrogen doping
  • Oxygen reduction reaction
  • g-CN

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