材料科学
固态
电解质
锂(药物)
制作
导电体
复合数
快离子导体
聚合物
膜
图层(电子)
化学工程
纳米技术
复合材料
电极
化学
内分泌学
工程类
病理
物理化学
医学
生物化学
替代医学
作者
Wenlu Sun,Jiansheng Zhang,Maoling Xie,Derong Lu,Zhao Zheng,Yiqiu Li,Zhangyuan Cheng,Sijing Zhang,Hongwei Chen
出处
期刊:Nano Letters
[American Chemical Society]
日期:2020-11-02
卷期号:20 (11): 8120-8126
被引量:93
标识
DOI:10.1021/acs.nanolett.0c03133
摘要
Ultrathin, ultrastrong, and highly conductive solid-state polymer-based composite electrolytes have long been exploited for the next-generation lithium-based batteries. In particular, the lightweight membranes that are less than tens of microns are strongly desired, aiming to maximize the energy densities of solid-state batteries. However, building such ideal membranes are challenging when using traditional materials and fabrication technologies. Here we reported a 7.1 μm thick heterolayered Kevlar/covalent organic framework (COF) composite membrane fabricated via a bottom-up spin layer-by-layer assembly technology that allows for precise control over the structure and thickness of the obtained membrane. Much stronger chemical/mechanical interactions between cross-linked Kevlar and conductive 2D-COF building blocks were designed, resulting in a highly strong and Li+ conductive (1.62 × 10–4 S cm–1 at 30 °C and 4.6 × 10–4 S cm–1 at 70 °C) electrolyte membrane that can prevent solid-state batteries from short-circuiting after over 500 h of cycling. All-solid-state lithium batteries using this membrane enable a significantly improved energy density.
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