单体
离子键合
膜
共价有机骨架
离子电导率
化学
共价键
聚合
醛
胺气处理
高分子化学
化学工程
离子交换
离子
电导率
无机化学
有机化学
聚合物
物理化学
催化作用
电解质
工程类
生物化学
电极
作者
Xiaoyao Wang,Benbing Shi,Hao Yang,Jingyuan Guan,Xu Liang,Chunyang Fan,Xinda You,Yanan Wang,Zhe Zhang,Hong Wu,Tao Cheng,Runnan Zhang,Zhongyi Jiang
标识
DOI:10.1038/s41467-022-28643-8
摘要
Ionic covalent organic framework membranes (iCOFMs) hold great promise in ion conduction-relevant applications because the high content and monodispersed ionic groups could afford superior ion conduction. The key to push the upper limit of ion conductivity is to maximize the ion exchange capacity (IEC). Here, we explore iCOFMs with a superhigh ion exchange capacity of 4.6 mmol g-1, using a dual-activation interfacial polymerization strategy. Fukui function is employed as a descriptor of monomer reactivity. We use Brønsted acid to activate aldehyde monomers in organic phase and Brønsted base to activate ionic amine monomers in water phase. After the dual-activation, the reaction between aldehyde monomer and amine monomer at the water-organic interface is significantly accelerated, leading to iCOFMs with high crystallinity. The resultant iCOFMs display a prominent proton conductivity up to 0.66 S cm-1, holding great promise in ion transport and ionic separation applications.
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