A Cellulose‐Derived Polymer Additive for Stabilizing Thick Cathodes in All‐Solid‐State Batteries

ABSTRACT All‐solid‐state batteries (ASSBs) offer enhanced safety and energy density over conventional lithium‐ion batteries. However, achieving high active material loading remains challenging due to poor interfacial contact from cold‐pressing and the incompatibility of solvent‐based processing with advanced solid‐state electrolytes. Herein, we report a cellulose‐derived polymer additive (CA‐MDI) that establishes intimate solid–solid interfacial contact while ensuring continuous electron/ion transport in the composite cathodes. The efficacy of CA‐MDI is ascribed to the urethane‐linked cellulose framework, which is synthesized via the polymerization of cellulose acetate (CA) and methylene diphenyl diisocyanate (MDI). The as‐constructed ASSBs incorporating a CA‐MDI‐modified LiNi 0.89 Co 0.055 Mn 0.055 O 2 cathode achieve a high areal capacity of 6.4 mAh cm −2 , delivering an initial discharge capacity of 136.6 mAh g −1 at 0.3C and retaining 91.1% of the capacity after 100 cycles, whereas additive‐free cells show rapid degradation. At a lower areal capacity of 1.8 mAh cm −2 , the CA‐MDI‐modified cell maintains 80% of its initial capacity for over 620 cycles at 1 C. The applicability of the CA‐MDI additive is further demonstrated using LiCoO 2 and Li‐rich layered oxide cathodes. These results show that a mechanically adaptive polymer additive can improve the cycling stability of thick composite cathodes and provide a useful approach for developing high‐energy‐density ASSBs.

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Publication Details

Journal
Angewandte Chemie
Published
2026-07-09
DOI
https://doi.org/10.1002/ange.5596828
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

A Cellulose‐Derived Polymer Additive for Stabilizing Thick Cathodes in All‐Solid‐State Batteries

Lifeng Chen, Xiaolong Yan, Sen Yang, T Liu et al.
Angewandte Chemie
Advanced Battery Materials and Technologies
article

A Cellulose‐Derived Polymer Additive for Stabilizing Thick Cathodes in All‐Solid‐State Batteries

Lifeng Chen, Xiaolong Yan, Sen Yang, T Liu, Simeng Zhang, Xiangzhen Zhu, Jianwen Liang, Changtai Zhao, Xiaona Li, Yueyue Wang, Ronghao Wang, HJ Xu, Junyi Yue, Yang Xu
article en

Abstract

ABSTRACT All‐solid‐state batteries (ASSBs) offer enhanced safety and energy density over conventional lithium‐ion batteries. However, achieving high active material loading remains challenging due to poor interfacial contact from cold‐pressing and the incompatibility of solvent‐based processing with advanced solid‐state electrolytes. Herein, we report a cellulose‐derived polymer additive (CA‐MDI) that establishes intimate solid–solid interfacial contact while ensuring continuous electron/ion transport in the composite cathodes. The efficacy of CA‐MDI is ascribed to the urethane‐linked cellulose framework, which is synthesized via the polymerization of cellulose acetate (CA) and methylene diphenyl diisocyanate (MDI). The as‐constructed ASSBs incorporating a CA‐MDI‐modified LiNi 0.89 Co 0.055 Mn 0.055 O 2 cathode achieve a high areal capacity of 6.4 mAh cm −2 , delivering an initial discharge capacity of 136.6 mAh g −1 at 0.3C and retaining 91.1% of the capacity after 100 cycles, whereas additive‐free cells show rapid degradation. At a lower areal capacity of 1.8 mAh cm −2 , the CA‐MDI‐modified cell maintains 80% of its initial capacity for over 620 cycles at 1 C. The applicability of the CA‐MDI additive is further demonstrated using LiCoO 2 and Li‐rich layered oxide cathodes. These results show that a mechanically adaptive polymer additive can improve the cycling stability of thick composite cathodes and provide a useful approach for developing high‐energy‐density ASSBs.

Angewandte Chemie
Ji Hua Laboratory (CN), Hefei National Center for Physical Sciences at Nanoscale (CN), Ningbo Institute of Industrial Technology (CN)
National Natural Science Foundation of China, Fundamental Research Funds for the Central Universities
Affordable and clean energy
Openalex Percentile: Top 12%
Advanced Battery Materials and Technologies
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