Quenching‐Induced Three‐Phase Heterostructured Catalysts for Oxygen Electrocatalysis with Lattice Oxygen Participation

C Changchun Ye Z Zhipeng Yu J Jin Yang J Junpeng Xie (Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China) Y Yangze Huang (Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China) J JieChang Gao (Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China) G Gui Xu (Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China) J Jiantie Xu (School of Physics and Optoelectronics South China University of Technology Guangzhou 510641 China) Z Zhenghui Pan (School of Materials Science and Engineering) Y Yajie Liu (Center for Retrovirus Research, The Ohio State University) L Lifeng Liu (Department of Pharmaceutics, State Key Laboratory of Natural Medicines, China Pharmaceutical University) X Xin Wang Z Zhixin Tai (Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China)

Abstract

Abstract Lattice oxygen‐mediated mechanism of oxygen evolution reaction can overcome the scaling relations‐induced limitations imposed by conventional adsorption evolution mechanism, but faces challenges in maximizing activation of lattice oxygen species. The flexible structure of three‐phase heterostructured catalysts provides the possibility for high‐performance electrocatalysis, yet still face the bottleneck of synthesis difficulty and insufficient regulation. Herein, a facile quenching route is proposed for the synthesis of core‐shell catalysts, and the influence mechanism of three‐phase heterostructure on quenching engineering is elucidated. High‐temperature LaNiO 3 nanoparticles are quenched in FeSO 4 solution to construct a LaNiO 3 /Fe(OH) 3 core‐shell structure by inducing rapid hydrolysis of Fe 2+ . The differential thermal expansion coefficient between LaNiO 3 and Fe 2 O 3 , as well as the three‐phase interfaces composed of core‐shell structure and amorphous/crystalline phases in Fe 2 O 3 shell, result in significant surface/interface regulation for LaNiO 3 /Fe 2 O 3 core‐shell catalysts during re‐quenching in Co(NO 3 ) 2 solution, including richer lattice distortion and defects, and more heteroatom doping. The derived three‐phase heterostructured catalysts exhibit significantly improved oxygen electrocatalytic activity with lattice oxygen participation, and the assembled liquid zinc–air batteries show excellent output power density and cycling performance. Our finding provides important insights into the synthesis of three‐phase heterostructured catalysts and the regulation of heterogeneous interfaces through quenching engineering.

Article Details

Volume / Issue Vol. 64, Issue 32
Published August 04, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

C

Changchun Ye

Z

Zhipeng Yu

J

Jin Yang

J

Junpeng Xie

Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China

Y

Yangze Huang

Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China

J

JieChang Gao

Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China

G

Gui Xu

Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China

J

Jiantie Xu

School of Physics and Optoelectronics South China University of Technology Guangzhou 510641 China

Z

Zhenghui Pan

School of Materials Science and Engineering

Y

Yajie Liu

Center for Retrovirus Research, The Ohio State University

L

Lifeng Liu

Department of Pharmaceutics, State Key Laboratory of Natural Medicines, China Pharmaceutical University

X

Xin Wang

Z

Zhixin Tai

Guangdong‐Hong Kong Joint Laboratory for Carbon Neutrality Jiangmen Laboratory of Carbon Science and Technology Jiangmen Guangdong Province 529199 China