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February 17, 2026Advanced Energy Materials2 citations

Highly Stable and Electrocatalytically Active Microflower‐Shaped, Fe 2 /Ni‐Coordinated N‐Doped Carbons With Vacancy Sites for Oxygen Redox Reactions

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GYGuiyuan YangChangchun University of Science and TechnologyYLYue LiChangchun University of Science and TechnologyXWXue WangChangchun University of Science and Technology

Key Points

  • This research aims to develop stable and efficient electrocatalysts for oxygen redox reactions in rechargeable zinc-air batteries.
  • Synthesis of Fe2/Ni-coordinated N-doped carbon microparticles through a two-step heat-treatment strategy
  • Characterization of material properties including co-structures and stability in alkaline media
  • Utilization of density functional theory simulations to analyze reaction mechanisms and electronic states
  • The catalyst achieves a peak power density of 264.4 mW cm–2
  • Demonstrates excellent long-term cycling stability for 1000 hours
  • Showcases remarkable bifunctional electrocatalytic activity due to unique structural features

Abstract

ABSTRACT Developing highly efficient and stable electrocatalysts for both the oxygen reduction reaction (ORR) and the oxygen evolution reaction (OER) is vital for the large‐scale deployment of rechargeable zinc‐air batteries (ZABs). Herein, a novel ternary‐atom catalyst, composed of Fe 2 ‐ and Ni‐coordinated, flower‐shaped, N‐doped carbon microparticles containing carbon vacancy sites (Fe 2 /Ni‐N‐C CV MFs), is synthesized using a facile two‐step heat‐treatment strategy. The material possesses Fe 2 ‒N 6 and Ni‒N 4 co‐structures as well as abundant carbon vacancy sites. These render the material remarkable bifunctional electrocatalytic activity and outstanding stability in alkaline media. Density functional theory simulations indicate that: i) the Fe 2 ‒N 6 sites stabilize the reaction intermediate *OOH through bidentate adsorption, ii) the Ni‒N 4 sites favorably modulate the electronic states of Fe 2 ‒N 6 sites, and iii) the carbon vacancy sites around the metallic species hinder the dissolution of the metallic centers. Furthermore, the catalyst exhibits a high peak power density of 264.4 mW cm ‒2 and excellent long‐term cycling stability for 1000 h in rechargeable ZABs. This work will not only guide the development of robust multi‐atom catalysts through the rational modulation of multi‐metallic and vacancy sites, but also provide a new approach to optimizing the electronic structures of the metal centers in such catalysts to enhance electrocatalytic performance.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6994058c4e9c9e835dfd66d9https://doi.org/10.1002/aenm.202506668
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