Boundary-Rich Carbon-Based Electrocatalysts with Manganese(II)-Coordinated Active Environment for Selective Synthesis of Hydrogen Peroxide.

Angew Chem Int Ed Engl

State Key Laboratory of Fine Chemicals, Frontier Science Center for Smart Materials, Liaoning Key Laboratory for Catalytic Conversion of Carbon Resources, School of Chemical Engineering, Dalian University of Technology, Dalian, 116024, Liaoning, P. R. China.

Published: March 2024

AI Article Synopsis

  • Manganese (Mn) electrocatalysts are promising for hydrogen peroxide (H₂O₂) production due to their non-toxic and abundant nature, but selective production via two-electron oxygen reduction (2e-ORR) remains challenging.
  • A new type of Mn(II)-coordinated active environment on porous carbon-based electrocatalysts enhances H₂O₂ synthesis efficiency, achieving nearly 100% Faradaic efficiency and record productivity of 15.1 mol g⁻¹ h⁻¹.
  • Mechanistic studies indicate that the presence of epoxide and hydroxyl groups around Mn(II) improves the catalyst's electronic properties, leading to better oxygen adsorption and significantly increasing the rate of H₂O₂

Article Abstract

Coordinated manganese (Mn) electrocatalysts owing to their electronic structure flexibility, non-toxic and earth abundant features are promising for electrocatalytic reactions. However, achieving selective hydrogen peroxide (H O ) production through two electron oxygen reduction (2e-ORR) is a challenge on Mn-centered catalysts. Targeting this goal, we report on the creation of a secondary Mn(II)-coordinated active environment with reactant enrichment effect on boundary-rich porous carbon-based electrocatalysts, which facilitates the selective and rapid synthesis of H O through 2e-ORR. The catalysts exhibit nearly 100 % Faradaic efficiency and H O productivity up to 15.1 mol g  h at 0.1 V versus reversible hydrogen electrode, representing the record high activity for Mn-based electrocatalyst in H O electrosynthesis. Mechanistic studies reveal that the epoxide and hydroxyl groups surrounding Mn(II) centers improve spin state by modifying electronic properties and charge transfer, thus tailoring the adsorption strength of *OOH intermediate. Multiscale simulations reveal that the high-curvature boundaries facilitate oxygen (O ) adsorption and result in local O enrichment due to the enhanced interaction between carbon surface and O . These merits together ensure the efficient formation of H O with high local concentration, which can directly boost the tandem reaction of hydrolysis of benzonitrile to benzamide with nearly 100 % conversion rate and exclusive benzamide selectivity.

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Source
http://dx.doi.org/10.1002/anie.202317660DOI Listing

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