表面改性
膜
电渗析
化学
选择性
聚合物
冠醚
离子运输机
单体
离子
离子交换
离子通道
离子键合
化学工程
共价键
组合化学
合成膜
高分子化学
反离子
嫁接
地穴
合理设计
盐(化学)
锂(药物)
磺酸
电色谱法
化学改性
萃取(化学)
纳米技术
功能群
有机化学
作者
Xinliang Zhang,Yubin He,Xueting Zhao,Ying Zhu,Liang Ge,Jiefeng Pan,Congjie Gao
摘要
ABSTRACT The ultrahigh ion selectivity of biological ion channels inspires the design of high‐efficiency ion separation materials. Mimicking bionic structural and functional precision in synthetic polymer membranes remains challenging. Herein, we propose a bioinspired design strategy to construct selective structures within ion channels for high‐performance monovalent selective cation exchange membranes (MSCEMs). Using the polymer as a matrix and crown ethers as functional monomers to form a synergistic transport channel composed of a “membrane matrix‐crown ether recognition site” transport architecture. Sulfonic acid groups serve as ion hopping sites to sustain high ion flux, while embedded crown ethers provide size‐matched and coordination‐selective ion recognition. The optimal membrane exhibits selective ion transport in mixed salt systems (K + >Na + >Li + >>Mg 2+ ) with excellent long‐term stability and scalability. The membranes were scaled up and integrated into an electrodialysis stack, enabling lithium extraction from simulated salt‐lake brines. This strategy establishes an internal channel functionalization paradigm for polymer membranes, providing a rational route toward advanced ion separation materials.
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