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Updated: Sep 18, 2025

Author Spotlight: Design and Evaluation of Au-Electroplated Carbon Fiber Cloth Electrodes for Hydrogen Peroxide Fuel Cells
Published on: October 20, 2023
Catalyst-Engineered Proton Transfer Pathways for Selective Hydrogen Peroxide Electrosynthesis in Solid-State
Jun Wang1,2, Junheng Huang1,2, Chunguang Jia3
1State Key Laboratory of Structural Chemistry, and Fujian Provincial Key Laboratory of Materials and Techniques toward Hydrogen Energy, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian, 350002, P.R. China.
Abstract:
Polymer-based solid electrolyte (SE) cells promise electrochemical synthesis of pure hydrogen peroxide (H2O2), yet the protonation mechanisms governing the two-electron oxygen reduction reaction (2e--ORR) remain unclear when using pure water as the proton source. Both Langmuir-Hinshelwood (LH, surface *H-mediated) and Eley-Rideal (ER, water-derived proton-coupled) pathways are theoretically plausible, but their practical dominance under SE conditions lacks experimental validation. Herein, we designed a hierarchical Ni─N2─C─O single-atom/NiO nanocluster co-decorated porous carbon nanosheet catalyst (NiSA-NiO/pCNs) that achieved a Faradaic efficiency of 97% and a H2O2 partial current density of 356 mA cm⁻2 (equivalent to 6.6 mmol cm-2 h-1 production rate) in a porous SE cell. Analysis of reaction intermediates and the local pH using in situ Raman spectroscopy, kinetic isotope effect, and density functional theory simulations showed the critical role of NiO nanoclusters in tuning the protonation pathway: NiO activates the ER mechanism via fast proton transfer from water dissociation, whereas NiSA/pCNs without NiO preferentially follow the LH mechanism through surface-adsorbed *H intermediates from interfacial transferred proton. These findings establish a catalyst design principle for proton transfer control in solid-state H2O2 electrosynthesis.
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