Dynamic Li+ Capture through Ligand‐Chain Interaction for the Regeneration of Depleted LiFePO4 Cathode

Author:

Zhao Xin‐Xin1,Wang Xiao‐Tong2,Guo Jin‐Zhi2,Gu Zhen‐Yi2,Cao Jun‐Ming2,Yang Jia‐Lin2,Lu Feng‐Qi3,Zhang Jing‐Ping1,Wu Xing‐Long12ORCID

Affiliation:

1. Faculty of Chemistry Northeast Normal University Changchun 130024 P. R. China

2. MOE Key Laboratory for UV Light‐Emitting Materials and Technology Northeast Normal University Changchun 130024 P. R. China

3. Guangxi Key Laboratory of Optical and Electronic Materials and Devices College of Materials Science and Engineering Guilin University of Technology Guilin 541004 P. R. China

Abstract

AbstractAfter application in electric vehicles, spent LiFePO4 (LFP) batteries are typically decommissioned. Traditional recycling methods face economic and environmental constraints. Therefore, direct regeneration has emerged as a promising alternative. However, irreversible phase changes can significantly hinder the efficiency of the regeneration process owing to structural degradation. Moreover, improper storage and treatment practices can lead to metamorphism, further complicating the regeneration process. In this study, a sustainable recovery method is proposed for the electrochemical repair of LFP batteries. A ligand‐chain Zn‐complex (ZnDEA) is utilized as a structural regulator, with its ─NH─ group alternatingly facilitating the binding of preferential transition metal ions (Fe3+ during charging and Zn2+ during discharging). This dynamic coordination ability helps to modulate volume changes within the recovered LFP framework. Consequently, the recovered LFP framework can store more Li‐ions, enhance phase transition reversibility between LFP and FePO4 (FP), modify the initial Coulombic efficiency, and reduce polarization voltage differences. The recovered LFP cells exhibit excellent capacity retention of 96.30% after 1500 cycles at 2 C. The ligand chain repair mechanism promotes structural evolution to facilitate ion migration, providing valuable insights into the targeted ion compensation for environmentally friendly recycling in practical applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Natural Science Foundation of Jilin Province

Fundamental Research Funds for the Central Universities

Postdoctoral Research Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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