Achieving Stable and Fast Ion Transport in Regenerated LiFePO <sub>4</sub> Via Vacancy‐Mediated Upcycling

L Lei Cheng M Minghui Shan (State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China) Y Yuhang Wang (State Key Laboratory of Bioinspired Interfacial Materials Science, Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, 199 Ren’ai Road, Suzhou, Jiangsu 215123, P. R. China) Z Zhongxiu Liu (State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China) L Long Yu (Department of Laboratory Medicine, Hubei Provincial Clinical Research Center for Molecular Diagnostics) Y Yilin Zhao Y Yunteng Cao G Guiyin Xu (State Key Laboratory of Advanced Fiber Materials, Center for Advanced Low-Dimension Materials, College of Materials Science and Engineering) M Meifang Zhu

Abstract

ABSTRACT The high stability and low cost of LiFePO 4 batteries have fueled their rapid expansion, resulting in a growing volume of spent battery materials that require effective recycling. While direct regeneration restores cathode performance to the original state, the intrinsic steric hindrance and susceptibility to anti‐site defect formation of one‐dimensional ion transport channels restrict lithium‐ion kinetics in regenerated LiFePO 4 . Herein, we propose a vacancy‐mediated upcycling strategy to regenerate LiFePO 4 , enabling stable and fast ion transport. It uses lithium vacancy defects in degraded cathodes to facilitate simultaneous lithium replenishment and dopant diffusion into the lattice, achieving lattice repair and modulation. This leads to contracted Fe─O bonds and elongated Li─O bonds, which form fast and stable ion transport channels. Regenerated LiFePO 4 exhibits exceptional rate capability (101.9 mAh g −1 at 10 C) and low‐temperature performance (64.3 mAh g −1 at −20°C). After 1000 cycles at 1 C, the cathode retains 95.7% capacity (137.6 mAh g −1 ), and the cycled cathode also exhibits reduced anti‐site defects and superior kinetics due to the lattice modulation. This vacancy‐mediated upcycling strategy for improving cathode performance presents significant economic and environmental benefits, providing a sustainable pathway for advanced battery recycling.

Article Details

Volume / Issue Vol. 65, Issue 14
Published March 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

L

Lei Cheng

M

Minghui Shan

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China

Y

Yuhang Wang

State Key Laboratory of Bioinspired Interfacial Materials Science, Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, 199 Ren’ai Road, Suzhou, Jiangsu 215123, P. R. China

Z

Zhongxiu Liu

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering Donghua University Shanghai China

L

Long Yu

Department of Laboratory Medicine, Hubei Provincial Clinical Research Center for Molecular Diagnostics

Y

Yilin Zhao

Y

Yunteng Cao

G

Guiyin Xu

State Key Laboratory of Advanced Fiber Materials, Center for Advanced Low-Dimension Materials, College of Materials Science and Engineering

M

Meifang Zhu