Highly–Efficient and Nondestructive Delamination of Cathode Scraps Through Air Plasma Toward Direct Regeneration of LiFePO 4

ABSTRACT LiFePO 4 (LFP) scraps generated during battery production and packaging usually retain an intact crystal structure, making them particularly suitable for direct regeneration. The feasibility of regeneration depends on the delamination effect of active materials, but conventional delamination methods often suffer from structural damage and low efficiency. Herein, we propose a low–temperature air plasma treatment strategy that enables highly efficient and nondestructive delamination of LFP scraps. Specifically, a much high delamination efficiency of 99.2% can be achieved, along with an ultralow Al impurity residue of 220 ppm, fully meeting battery‐grade usage. Meanwhile, the Fe 2+ oxidation ratio in LFP lattice is limited to only 1.7%, ensuring excellent structure preservation. This nondestructive delamination effect is primarily due to the fact that the unsaturated C═C structures formed during the plasma‐induced PVDF defluorination process preferentially consume reactive species and thereby suppress Fe 2 + oxidation in the LFP lattice. Benefiting from these merits, the delaminated LFP material can be directly assembled into batteries, delivering a comparable performance to commercial LFP. Furthermore, economic and environmental analysis reveals that the plasma–assisted direct regeneration strategy achieves significantly lower energy consumption and operating cost than other closed–loop recycling routes, providing a promising paradigm for the direct regeneration and closed–loop recycling of battery scraps.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-08-25
DOI
https://doi.org/10.1002/adfm.77960
Primary Topic
Extraction and Separation Processes
Type
article
Field-Weighted Citation Impact
0.00

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article

Highly–Efficient and Nondestructive Delamination of Cathode Scraps Through Air Plasma Toward Direct Regeneration of LiFePO 4

Liming Yang, Guang Yang, Tian Liu, Liang Chen et al.
Advanced Functional Materials
Extraction and Separation Processes
article

Highly–Efficient and Nondestructive Delamination of Cathode Scraps Through Air Plasma Toward Direct Regeneration of LiFePO 4

Liming Yang, Guang Yang, Tian Liu, Liang Chen, Xubiao Luo, Yifeng Li, Xiao Li, Yuan Xun
article en

Abstract

ABSTRACT LiFePO 4 (LFP) scraps generated during battery production and packaging usually retain an intact crystal structure, making them particularly suitable for direct regeneration. The feasibility of regeneration depends on the delamination effect of active materials, but conventional delamination methods often suffer from structural damage and low efficiency. Herein, we propose a low–temperature air plasma treatment strategy that enables highly efficient and nondestructive delamination of LFP scraps. Specifically, a much high delamination efficiency of 99.2% can be achieved, along with an ultralow Al impurity residue of 220 ppm, fully meeting battery‐grade usage. Meanwhile, the Fe 2+ oxidation ratio in LFP lattice is limited to only 1.7%, ensuring excellent structure preservation. This nondestructive delamination effect is primarily due to the fact that the unsaturated C═C structures formed during the plasma‐induced PVDF defluorination process preferentially consume reactive species and thereby suppress Fe 2 + oxidation in the LFP lattice. Benefiting from these merits, the delaminated LFP material can be directly assembled into batteries, delivering a comparable performance to commercial LFP. Furthermore, economic and environmental analysis reveals that the plasma–assisted direct regeneration strategy achieves significantly lower energy consumption and operating cost than other closed–loop recycling routes, providing a promising paradigm for the direct regeneration and closed–loop recycling of battery scraps.

Advanced Functional Materials
Hunan Institute of Science and Technology (CN), Anhui Agricultural University (CN), Jinggangshan University (CN), Hefei University of Technology (CN), Nanchang Hangkong University (CN)
National Science Foundation, National Natural Science Foundation of China, Natural Science Foundation of Hunan Province, Young Scientists Fund, National Key Research and Development Program of China
Affordable and clean energy
Openalex Percentile: Top 19%
Extraction and Separation Processes
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