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◆ National Science Review2026-03-03· Battery (electricity)

Sharing electronic and ionic transfer channels for high-energy-density and stable quasi-solid-state lithium-oxygen battery

Yuanguo Wu, Zhuojun Zhang, Yi-Xiang Wang, Hongtao Qu, J. Li, Liuxi Yang, Amanda R. Kale, Xikun Zhang, Xiangyu Wen, Zhihong Wang, Zhe Lü, Yanfang Li, Peng Tan, Xuetao Zhu, Prof. Bao-Lian Su

原始摘要(英文原文)· Original abstract
ABSTRACT Thick cathodes are essential for practical high-energy batteries, yet their development is hindered by sluggish charge kinetics, particularly in lithium-oxygen batteries (LOBs) where robust three-phase boundaries (TPBs) for e−, Li+, and O2 are indispensable. Herein, we propose a gel polymer electrolyte (GPE) integration strategy that enables the construction of a streamlined dual-conductive network for both e− and Li+ while preserving optimal porosity for rapid O2 diffusion in thick cathodes (∼2 mm). This innovative architecture creates extensive and continuous TPBs throughout the entire cathode, enabling an exceptional areal capacity of 34.6 mAh cm−2, surpassing most previously reported LOBs, and a record-breaking gravimetric capacity of 19 000 mAh g−1. Numerical simulations further validate the superiority of this approach. Our work provides a proof of concept for overcoming kinetic transport limitations in thick cathodes, paving the way for next-generation high-capacity and stable LOBs.
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