Mechanistically Engineered Heterojunction From Spent LFP for Efficient Oxygen Evolution Electrocatalysis

C Chang Wang X Xiangkai Kong (School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China) L Lizhi Wang (College of Chemistry and Chemical Engineering) F Fan Yin (State Key Laboratory of Structural Chemistry Fujian Institute of Research on the Structure of Matter Chinese Academy of Sciences Fuzhou P. R. China) F Fangyu Zheng (School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China) S Siyi Liu Q Qiangchun Liu (School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China) Q Quanchao Zhuang (School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China) Z Zhicheng Ju (School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China) J Jintao Zhang (Shandong University , , ,)

Abstract

AbstractThe large‐scale retirement of LiFePO4 (LFP) batteries demands sustainable strategies for material recovery and functional repurposing. However, the inert micrometer‐scale morphology and electronically stable lattice of spent LFP hinder its direct catalytic reuse. Herein, we present a structure‐guided strategy that upcycles spent LFP into a high‐performance oxygen evolution reaction (OER) electrocatalyst. Mild air oxidation transforms LFP into a phosphate‐rich Li3Fe2(PO4)3 (LFP(III)) framework decorated with coronal α‐Fe2O3 nanodots. This reconfiguration preserves the bulk structure while achieving nanoscale surface activation. Subsequent spatially selective growth of NiO on α‐Fe2O3 yields a well‐defined p‐NiO/n‐Fe2O3 heterojunction, driving interfacial charge redistribution and promoting formation of catalytically active NiOOH species under operational conditions. In situ Raman and XPS analyses reveal that the heterostructure facilitates lattice oxygen participation via an accelerated lattice oxygen mechanism, while the phosphate‐rich LFP(III) matrix imparts strong electrostatic repulsion toward Cl−, effectively suppressing halide‐induced corrosion. The resulting LFP(III)/NiO catalyst achieves low overpotentials of 268 and 292 mV at 10 and 100 mA cm−2, respectively, in chloride‐containing electrolytes, along with excellent durability. Techno‐economic analysis indicates a six‐fold improvement in cost‐efficiency over conventional recycling. This work establishes a mechanistically informed and energy‐efficient upcycling strategy that bridges battery waste management with functional catalyst design, advancing both sustainable materials chemistry and water‐splitting technologies.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

C

Chang Wang

X

Xiangkai Kong

School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China

L

Lizhi Wang

College of Chemistry and Chemical Engineering

F

Fan Yin

State Key Laboratory of Structural Chemistry Fujian Institute of Research on the Structure of Matter Chinese Academy of Sciences Fuzhou P. R. China

F

Fangyu Zheng

School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China

S

Siyi Liu

Q

Qiangchun Liu

School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China

Q

Quanchao Zhuang

School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China

Z

Zhicheng Ju

School of Materials and Physics & Center of Mineral Resource Waste Recycling China University of Mining and Technology Xuzhou Jiangsu 221116 China

J

Jintao Zhang

Shandong University , , ,