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February 8, 20260 citations

Coordination-Dependent Oxygen Reduction Reaction Activity of Single Atom Co-Nx-C Electrocatalysts.

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CLC. -Q LiuDZDi ZhangJCJiaxiang Chen

Key Points

  • The study aims to explore how the coordination number of cobalt in nitrogen-carbon catalysts influences their oxygen reduction reaction activity.
  • Developed heterogeneous molecular catalysts using organometallic molecules on carbon nanotube substrates.
  • Controlled metal-nitrogen coordination environments for cobalt metal centers.
  • Conducted kinetic studies and operando spectroscopic measurements.
  • Found accurate correlations between ORR activity and coordination numbers (3 to 5).
  • Discovered that cobalt in asymmetric coordination environments exhibited higher activity for the two-electron ORR.
  • Identified the first-shell coordinating atoms could be protonated, acting as proton relays in the reaction.

Abstract

The coordination number between the bound metal center and the supporting nitrogen atoms in single-metal-atom nitrogen-carbon catalysts (M-N-C) is an important structural parameter that can impact the catalytic activity. Understanding the structure-activity relationship between coordination number and catalytic activity is made challenging by difficulties in obtaining M-N-C catalysts with precisely controlled metal-nitrogen coordination environments. Herein, we address this challenge using heterogeneous molecular catalysts for the oxygen reduction reaction (ORR) constructed by depositing structure-defined organometallic molecules on a catalytically inert carbon nanotube substrate. The explicit metal-nitrogen coordination environments enabled us to establish accurate ORR activity-structure correlations for cobalt metal centers with first-shell Co-N coordination numbers of 3 to 5 (Co-Nx, where x = 3, 4, and 5). A good agreement between theoretical predictions and experimental ORR activity and selectivity was seen. Of note, Co atoms in an asymmetric coordination environment were found to exhibit higher activity for the two-electron (2e) ORR. Kinetic studies and operando spectroscopic measurements further revealed that the first-shell coordinating C or N atoms in asymmetric Co-N3 and Co-N5 centers could be protonated and participate in the ORR as a proton relay. The present study may aid in understanding the role of the coordination environment in other metal-based catalytic systems being applied to renewable energy conversion reactions.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/698828990fc35cd7a884826dhttps://doi.org/10.1021/jacs.5c20980
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