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Angewandte Chemie International Edition· 2026Q1

Breaking Charge Symmetry in Co–Zn Dual‑Atom Catalyst With Axial Sulfur Coordination for Efficient Oxygen Reduction Reaction

Jixiang Zou, Lixiao Shen, Zhishuai Yuan, Mei Yan et al.

Short summary

A Co–Zn dual-atom catalyst (DAC) with axial sulfur coordination (Co─Zn@SNC) achieves superior oxygen reduction reaction (ORR) activity by inducing asymmetric charge distribution, reaching half-wave potentials of 0.902 V (alkaline), 0.817 V (neutral), and 0.809 V (acidic).

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Key points

  • A Co–Zn dual-atom catalyst (DAC) with axial sulfur coordination (Co─Zn@SNC) was synthesized using a molecular-cage encapsulation method.
  • The catalyst exhibits high ORR activity across a wide pH range, with half-wave potentials of 0.902 V (alkaline), 0.817 V (neutral), and 0.809 V (acidic).
  • Axial sulfur coordination induces asymmetric charge distribution within the Co-N4 active site, improving catalytic efficiency.
  • Zinc-air batteries and microbial fuel cells using Co─Zn@SNC cathodes achieved peak power densities of 166.36 mW cm−2 and 1.505 W m−2, respectively.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT Dual‐atom catalysts (DACs) represent an emerging and promising paradigm in electrocatalysis. Nevertheless, their symmetric electron density distribution hampers the polarization and subsequent scission of the O─O bond. In this work, a Co–Zn DAC with axial sulfur coordination (Co─Zn@SNC) was constructed via a molecular‐cage encapsulation method. The as‐synthesized catalyst demonstrated outstanding oxygen reduction reaction (ORR) activity across a wide pH range, with half‐wave potentials of 0.902 V in 0.1 M KOH, 0.817 V in 0.1 M PBS, and 0.809 V in 0.1 M HClO 4 . Theoretical calculations revealed that the axially coordinated S not only modulated the orbital and electronic structure of the Co active center but also collaborated with the nearby Zn site to induce an asymmetric charge distribution within the Co‐N 4 , thereby shifting the catalytic activity closer to the peak of the Sabatier volcano plot. The zinc–air battery (ZAB) and microbial fuel cell (MFC) assembled with the Co─Zn@SNC cathode exhibited peak power densities of 166.36 mW cm −2 and 1.505 W m −2 , respectively, as well as good stability. The present work provided fundamental insights into the precise regulation and underlying mechanism of DACs, offering a viable strategy for the rational design of advanced electrocatalysts for energy storage and conversion applications.

The authors' abstract, as published at the source. Angewandte Chemie International Edition, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy