Engineering Residual Rock‐Salt Reconstruction through Near‐Surface Fluorine Regulation for Stable 4.6 V Cycling of Regenerated Spent Layered Oxide Cathodes

ABSTRACT Direct regeneration enables high‐value recovery of spent layered oxide cathodes, but their high‐voltage reuse requires stabilization of both regenerated surface and lattice oxygen beyond bulk compositional restoration. Here, we report a high‐voltage upcycling strategy for spent LiNi 0.6 Co 0.2 Mn 0.2 O 2 (NCM) based on near‐surface fluorine (F) regulation of residual rock‐salt layers. Molten‐salt relithiation recovers Li content and layered bulk framework, whereas subsequent fluorine treatment converts the remaining inert surface reconstruction into a thin F‐enriched rock‐salt interphase. Rather than impeding Li + transport, this interphase stabilizes the reconstructed surface, reduces oxygen defects, and mitigates electrolyte‐induced interfacial degradation. The resulting cathode with F‐enriched rock‐salt surface (RFNCM) delivers 208.7 mAh g −1 at 0.1 C within 3.0‐4.6 V, and retains 80.28% capacity after 400 cycles at 1 C and 25°C, and 80.93% after 200 cycles at 50°C. In situ X‐ray diffraction and gas‐evolution measurements reveal more homogeneous high‐voltage structural evolution and suppressed oxygen release, respectively. According to analysis results of XPS, in situ Raman and Density functional theory calculations, these improvements can be attributed to strengthened Ni─O interactions and increased oxygen‐vacancy formation energies after fluorine incorporation. This work converts an unavoidable reconstruction product into a protective interphase for high‐voltage reuse of spent layered oxide cathodes.

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Publication Details

Journal
Advanced Materials
Published
2026-10-05
DOI
https://doi.org/10.1002/adma.75244
Primary Topic
Extraction and Separation Processes
Type
article
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article

Engineering Residual Rock‐Salt Reconstruction through Near‐Surface Fluorine Regulation for Stable 4.6 V Cycling of Regenerated Spent Layered Oxide Cathodes

Zongkui Kou, Weihao Zeng, Mengting Jiang, Shichun C. Mu et al.
Advanced Materials
Extraction and Separation Processes
article

Engineering Residual Rock‐Salt Reconstruction through Near‐Surface Fluorine Regulation for Stable 4.6 V Cycling of Regenerated Spent Layered Oxide Cathodes

Zongkui Kou, Weihao Zeng, Mengting Jiang, Shichun C. Mu, Dongqi Li, Fanjie Xia, Hongyu Zhao, Zhaopei Liu, Zhuo Chen, Yuxin Liu, Shihui Li, Juan Wang, Zhongpeng Li, Panxing Han, Hao Luo, Lin Wang
article en

Abstract

ABSTRACT Direct regeneration enables high‐value recovery of spent layered oxide cathodes, but their high‐voltage reuse requires stabilization of both regenerated surface and lattice oxygen beyond bulk compositional restoration. Here, we report a high‐voltage upcycling strategy for spent LiNi 0.6 Co 0.2 Mn 0.2 O 2 (NCM) based on near‐surface fluorine (F) regulation of residual rock‐salt layers. Molten‐salt relithiation recovers Li content and layered bulk framework, whereas subsequent fluorine treatment converts the remaining inert surface reconstruction into a thin F‐enriched rock‐salt interphase. Rather than impeding Li + transport, this interphase stabilizes the reconstructed surface, reduces oxygen defects, and mitigates electrolyte‐induced interfacial degradation. The resulting cathode with F‐enriched rock‐salt surface (RFNCM) delivers 208.7 mAh g −1 at 0.1 C within 3.0‐4.6 V, and retains 80.28% capacity after 400 cycles at 1 C and 25°C, and 80.93% after 200 cycles at 50°C. In situ X‐ray diffraction and gas‐evolution measurements reveal more homogeneous high‐voltage structural evolution and suppressed oxygen release, respectively. According to analysis results of XPS, in situ Raman and Density functional theory calculations, these improvements can be attributed to strengthened Ni─O interactions and increased oxygen‐vacancy formation energies after fluorine incorporation. This work converts an unavoidable reconstruction product into a protective interphase for high‐voltage reuse of spent layered oxide cathodes.

Advanced Materials
Wuhan University of Technology (CN), State Key Laboratory of Advanced Technology For Materials Synthesis and Processing
Openalex Percentile: Top 21%
Extraction and Separation Processes
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