In-Plane Topological-Defect-Enriched Graphene as an Efficient Metal-Free Catalyst for pH-Universal H 2 O 2 Electrosynthesis

Developing efficient metal-free catalysts to directly synthesize hydrogen peroxide (H O ) through a 2-electron (2e) oxygen reduction reaction (ORR) is crucial for substituting the traditional energy-intensive anthraquinone process. Here, in-plane topological defects enriched graphene with pentagon-S...

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Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2024-07, Vol.20 (29), p.e2400564
Hauptverfasser: Mou, Zhixing, Mu, Yuewen, Liu, Lijia, Cao, Daili, Chen, Shuai, Yan, Wenjun, Zhou, Haiqing, Chan, Ting-Shan, Chang, Lo-Yueh, Fan, Xiujun
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Sprache:eng
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Zusammenfassung:Developing efficient metal-free catalysts to directly synthesize hydrogen peroxide (H O ) through a 2-electron (2e) oxygen reduction reaction (ORR) is crucial for substituting the traditional energy-intensive anthraquinone process. Here, in-plane topological defects enriched graphene with pentagon-S and pyrrolic-N coordination (SNC) is synthesized via the process of hydrothermal and nitridation. In SNC, pentagon-S and pyrrolic-N originating from thiourea precursor are covalently grafted onto the basal plane of the graphene framework, building unsymmetrical dumbbell-like S─C─N motifs, which effectively modulates atomic and electronic structures of graphene. The SNC catalyst delivers ultrahigh H O productivity of 8.1, 7.3, and 3.9 mol g  h in alkaline, neutral, and acidic electrolytes, respectively, together with long-term operational stability in pH-universal electrolytes, outperforming most reported carbon catalysts. Theoretical calculations further unveil that defective S─C─N motifs efficiently optimize the binding strength to OOH intermediate and substantially diminish the kinetic barrier for reducing O to H O , thereby promoting the intrinsic activity of 2e-ORR.
ISSN:1613-6810
1613-6829
DOI:10.1002/smll.202400564