电池(电)
阴极
重量分析
材料科学
电解质
扩散
多孔性
离子键合
工作(物理)
频道(广播)
纳米技术
计算机科学
电荷(物理)
聚合物
动能
聚合物电解质
电极
化学工程
边界(拓扑)
离子电导率
多孔介质
传输(计算)
传质
电压
化学物理
电池容量
工程物理
电容
电流(流体)
作者
Yuanguo Wu,Zhuojun Zhang,Yì Wáng,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
摘要
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 19000 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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