Bioinspired Tough Solid-State Electrolyte for Flexible Ultralong-Life Zinc-Air Battery

被引:130
作者
Dou, Haozhen [1 ]
Xu, Mi [2 ,3 ]
Zheng, Yun [1 ]
Li, Zhaoqiang [1 ]
Wen, Guobin [1 ]
Zhang, Zhen [1 ]
Yang, Leixin [2 ,3 ]
Ma, Qianyi [1 ]
Yu, Aiping [1 ]
Luo, Dan [2 ,3 ]
Wang, Xin [2 ,3 ]
Chen, Zhongwei [1 ]
机构
[1] Univ Waterloo, Dept Chem Engn, Waterloo, ON N2L 3G1, Canada
[2] South China Normal Univ, South China Acad Adv Optoelect, Guangzhou 510006, Peoples R China
[3] South China Normal Univ, Int Acad Optoelect Zhaoqing, Guangzhou 510006, Peoples R China
基金
加拿大自然科学与工程研究理事会;
关键词
bioinspired design; flexible zinc-air batteries; hydrogels; hydroxide ion conduction; molecular dynamics simulation; solid-state electrolytes; POLYMER-ELECTROLYTE; MEMBRANES; MICROCAPSULES; CONDUCTIVITY; RETENTION;
D O I
10.1002/adma.202110585
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Manufacturing advanced solid-state electrolytes (SSEs) for flexible rechargeable batteries becomes increasingly important but remains grand challenge. The sophisticated structure of robust animal dermis and good water-retention of plant cell in nature grant germane inspirations for designing high-performance SSEs. Herein, tough bioinspired SSEs with intrinsic hydroxide ion (OH-) conduction are constructed by in situ formation of OH- conductive ionomer network within a hollow-polymeric-microcapsule-decorated hydrogel polymer network. By virtue of the bioinspired design and dynamic dual-penetrating network structure, the bioinspired SSEs simultaneously obtain mechanical robustness with 1800% stretchability, good water uptake of 107 g g(-1) and water retention, and superhigh ion conductivity of 215 mS cm(-1). The nanostructure of bioinspired SSE and related ion-conduction mechanism are revealed and visualized by molecular dynamics simulation, where plenty of compact and superfast ion-transport channels are constructed, contributing to superhigh ion conductivity. As a result, the flexible solid-state zinc-air batteries assembled with bioinspired SSEs witness high power density of 148 mW cm(-2), specific capacity of 758 mAh g(-1) and ultralong cycling stability of 320 h as well as outstanding flexibility. The bioinspired methodology and deep insight of ion-conduction mechanism will shed light on the design of advanced SSEs for flexible energy conversion and storage systems.
引用
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页数:12
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