Atomically Dispersed Fe Confined into MnO Nanoclusters Enhances Alkaline Oxygen Reduction Activity and Stability

M Meng Dan (College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China) X Xiting Zhang (School of Chemistry and Chemical Engineering) C Congyi Du (School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory for Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou 510006 P.R. China) Z Zhen Guo (CAS Key Lab of Bio-Medical Diagnostics) J Jianan Zhang Z Zhao‐Qing Liu (School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/ Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory For Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou P.R. China)

Abstract

Abstract Transition metal oxide electrocatalysts are promising alternatives to expensive noble metals for the oxygen reduction reaction (ORR). Here, we present a simple metal‐atom localization strategy to confine the atomically dispersed Fe into MnO nanoclusters, which are dispersed and immobilized on high‐conductivity carbon support (MF/CN). The experimental and theoretical calculation results reveal that the trace Fe(III) ions doped into MnO nanoclusters can induce charge transfer and spin state transition to trigger a butterfly effect, obtaining abundant active Mn(III) with single‐electron e g configuration and strengthened built‐in electric field (BIEF), which is greatly helpful to balance the adsorption and desorption of ORR O‐containing intermediates, facilitate the interfacial electron transfer, and improve the electrical conductivity. As a result, the optimized MF 0.04 /CN exhibits compelling alkaline ORR activity (half‐wave potential 0.79 V vs. RHE) and stability (nearly 100% current retention rate for 30 h). Finally, the MF 0.04 /CN realizes a remarkable power density (138 mW cm −2 ) and durability (>666 h at 10 mA cm −2 ) in Zn‐air batteries. This finding not only helps to design high‐performance metal oxide heterointerfaces by tuning e g orbital occupancy and BIEF strength, but also deepens the understanding of the reaction mechanism.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

M

Meng Dan

College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China

X

Xiting Zhang

School of Chemistry and Chemical Engineering

C

Congyi Du

School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory for Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou 510006 P.R. China

Z

Zhen Guo

CAS Key Lab of Bio-Medical Diagnostics

J

Jianan Zhang

Z

Zhao‐Qing Liu

School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/ Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory For Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou P.R. China