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Updated: Jan 15, 2026

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Designing Co-N/C Cathode Catalysts with Dense Atomic Cobalt Sites for Enhanced PEMFC Performance
Mengjun Gong1, Asad Mehmood2, Ana Guilherme Buzanich3
1Department of Chemistry, Imperial College London, Molecular Sciences Research Hub, White City Campus, London, W12 0BZ, UK.
None:
Metal-nitrogen/carbon (M-N/C) catalysts, particularly those incorporating Fe, Co, or Mn, are among the most promising non-platinum group catalysts for the acidic oxygen reduction reaction (ORR) in fuel cells. This study reports a Co-N/C catalyst featuring high (3 wt%) cobalt content exclusively present as atomic sites. Extended X-ray absorption fine structure analysis confirms a tetrapyridinic Co-N4 coordination environment in the optimized (3.0)Co-N/CΔ catalyst. The high cobalt loading leads to a significant density of electrochemically accessible active sites, 3.58 × 1019 sites g-1, quantified via the nitrite stripping method. The catalyst demonstrates excellent ORR activity in a rotating ring-disk electrode setup, achieving a half-wave potential (E1/2) of 0.76 V at a low loading of 0.2 mg cm-2 and a mass activity of 3.5 A g-1 at 0.80 VRHE. Single-cell hydrogen-oxygen PEMFC tests achieve a peak power density exceeding 1.3 W cm-2 (iR-corrected). Under hydrogen-air condition, the catalyst delivers 0.54 A cm-2 at 0.60 V (0.39 W cm-2). Despite the intrinsically higher turnover frequency of Fe-based sites, the optimized (3.0)Co-N/CΔ catalyst achieves similar fuel cell performance to that of Fe-N/C, highlighting the critical role of site density in overall activity.
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