4.7 Article

Beyond Nitrogen in the Oxygen Reduction Reaction on Nitrogen-Doped Carbons: A NEXAFS Investigation

期刊

NANOMATERIALS
卷 11, 期 5, 页码 -

出版社

MDPI
DOI: 10.3390/nano11051198

关键词

nitrogen-doped carbon; structure; oxygen reduction reaction

资金

  1. European Union's Horizon 2020 Research and Innovation Programme under the Marie Sklodowska-Curie grant [797781]
  2. Romanian Ministry of Research and Innovation within PNCDI III [PN-III-1.2-PCCDI-2017-0185, 76 PCCDI/2018, PD 111/2018, TE 115/2020]
  3. CERIC-ERIC [20192114]
  4. Marie Curie Actions (MSCA) [797781] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

Nitrogen-doped carbons play a crucial role in the oxygen reduction reaction, but the presence of oxygen is also essential for achieving high onset potentials. The study revealed that the oxygen surrounding the pyridinic nitrogen was critical in influencing the onset potentials. While there was no clear correlation between sample structure and electrochemical activity, nitrogen chemistry remains a significant factor.
Polymer electrolyte membrane fuel cells require cheap and active electrocatalysts to drive the oxygen reduction reaction. Nitrogen-doped carbons have been extensively studied regarding their oxygen reduction reaction. The work at hand looks beyond the nitrogen chemistry and brings to light the role of oxygen. Nitrogen-doped nanocarbons were obtained by a radio-frequency plasma route at 0, 100, 250, and 350 W. The lateral size of the graphitic domain, determined from Raman spectroscopy, showed that the nitrogen plasma treatment decreased the crystallite size. Synchrotron radiation photoelectron spectroscopy showed a similar nitrogen chemistry, albeit the nitrogen concentration increased with the plasma power. Lateral crystallite size and several nitrogen moieties were plotted against the onset potential determined from oxygen reduction reaction curves. There was no correlation between the electrochemical activity and the sample structure, as determine from Raman and synchrotron radiation photoelectron spectroscopy. Near-edge X-ray absorption fine structure (NEXAFS) was performed to unravel the carbon and nitrogen local structure. A difference analysis of the NEXAFS spectra showed that the oxygen surrounding the pyridinic nitrogen was critical in achieving high onset potentials. The work shows that there were more factors at play, other than carbon organization and nitrogen chemistry.

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