Catholyte-free cathode design for high-energy-density all-solid-state lithium batteries

All-solid-state lithium batteries (ASSLBs) are regarded as pivotal next-generation energy devices owing to their safety and high energy-density potential. Nevertheless, conventional cathodes, which rely on excessive inactive solid electrolyte (SE) fillers (20-40%), suffer from limited cathode active material (CAM) content, tortuous ion transport, and unstable CAM/SE heterogeneous interfaces, severely restricting the energy density and cycling durability of ASSLBs. As an emerging frontier design, catholyte-free cathode architectures fundamentally eliminate extrinsic SE components, enabling ultrahigh CAM utilization (>95%), low Li-ion transport tortuous, and suppressed interfacial side reactions and mechanical degradation. This review systematically summarizes the recent advances of catholyte-free ASSLBs, encompassing oxide, sulfide and halide catholyte-free cathode, and elaborates material optimization strategies such as defect modulation, amorphization engineering, and composite structural design. We further elucidate the intrinsic interfacial and chemo-mechanical merits of homogeneous CAM/CAM interface over heterogeneous CAM/SE interface, and outline future optimization guidelines to facilitate the development of high-energy-density ASSLBs.

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Publication Details

Journal
Functional Materials Letters
Published
2026-09-18
DOI
https://doi.org/10.1142/s1793604726410018
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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Catholyte-free cathode design for high-energy-density all-solid-state lithium batteries

Xiangyu Zhao, Shuo Sun, Zhiyuan Sheng, Zhiqiang Liu
Functional Materials Letters
Advanced Battery Materials and Technologies
article

Catholyte-free cathode design for high-energy-density all-solid-state lithium batteries

Xiangyu Zhao, Shuo Sun, Zhiyuan Sheng, Zhiqiang Liu
article en

Abstract

All-solid-state lithium batteries (ASSLBs) are regarded as pivotal next-generation energy devices owing to their safety and high energy-density potential. Nevertheless, conventional cathodes, which rely on excessive inactive solid electrolyte (SE) fillers (20-40%), suffer from limited cathode active material (CAM) content, tortuous ion transport, and unstable CAM/SE heterogeneous interfaces, severely restricting the energy density and cycling durability of ASSLBs. As an emerging frontier design, catholyte-free cathode architectures fundamentally eliminate extrinsic SE components, enabling ultrahigh CAM utilization (>95%), low Li-ion transport tortuous, and suppressed interfacial side reactions and mechanical degradation. This review systematically summarizes the recent advances of catholyte-free ASSLBs, encompassing oxide, sulfide and halide catholyte-free cathode, and elaborates material optimization strategies such as defect modulation, amorphization engineering, and composite structural design. We further elucidate the intrinsic interfacial and chemo-mechanical merits of homogeneous CAM/CAM interface over heterogeneous CAM/SE interface, and outline future optimization guidelines to facilitate the development of high-energy-density ASSLBs.

Functional Materials Letters
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Catholyte-free cathode design for high-energy-density all-solid-state lithium batteries — Xiangyu Zhao, Shuo Sun, et al. · Functional Materials Letters (2026) | TGRS Research Map | TGRS