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September 5, 2025Angewandte Chemie International Edition40 citations

Regulation of Relay Catalytic Mechanism for Efficient Methanol Oxidation Reaction

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GLGuangliang LinHQHongye QinXCXuejie Cao

Key Points

  • Nearly 100% Faradaic efficiency is achieved through a relay catalysis approach in the methanol oxidation reaction.
  • The engineered heterojunction successfully shifts the rate-determining step from *CHO–OH − coupling to O─H bond cleavage.
  • Multiscale characterizations and density functional theory computations demonstrate spatial decoupling as a means to reduce thermodynamic barriers.
  • Relay catalysis enhances electrocatalytic activity, indicating the critical role of spatial distribution in optimizing catalytic pathways.

Abstract

Abstract The methanol oxidation reaction serves as a representative model for multistep catalytic processes involving diverse intermediates. Catalyst design strategies that spatially arrange discrete active sites, analogous to relay runners, facilitate the sequential activation of reaction steps, thereby enhancing overall catalytic efficiency compared to single‐site catalysts. This approach effectively decouples complex reaction networks into a sequence of coordinated elementary steps, thereby enhancing the production efficiency of the target products. Here, we propose a relay catalysis paradigm through electrochemical in situ construction of NiOOH‐Mo 2 C@C heterojunction featuring with dual Lewis acid sites. By precisely controlling interfacial methanol/OH − concentration gradients, nearly 100% Faradaic efficiency for formate production is achieved during methanol electrooxidation. Multiscale characterizations combined with density functional theory computations reveal that the engineered interface regulates *CHO intermediate migration from NiOOH to Mo 2 C domains, thereby effectively shifting the rate‐determining step from *CHO‐OH − coupling to O─H bond cleavage. This spatial decoupling strategy reduces the thermodynamic barrier by 1.18 eV. This study elucidates a design strategy that tailors the spatial distribution of electrochemical interface species to guide catalytic pathway optimization. Furthermore, it highlights the essential role of heterojunction‐mediated relay catalysis in enhancing electrocatalytic activity for the oxidation of organic small molecules.

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Cite This Study

Lin et al. (2025) studied this question.

synapsesocial.com/papers/68bb49db6d6d5674bcd004cfhttps://doi.org/10.1002/anie.202506215
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