选择性
化学
无机化学
氯化物
膜
离子
镁
氯化锂
有机化学
催化作用
生物化学
作者
Yushuang Hou,Chenguang Zhu,Haozhe Sun,Yongye Zhao,Shangfa Pan,Shengtao Ma,Qianqian Fu,Xin Sui,Xueli Liu,Lei Jiang,Jun Gao
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-04-11
卷期号:64 (25): e202504259-e202504259
被引量:2
标识
DOI:10.1002/anie.202504259
摘要
Abstract Inspired by nature, many artificial ion sieving materials have been developed, shedding light on the next‐generation ion, e.g., Li + , extraction applications. Artificial co‐transporters remain difficult to construct since they have a much more complex ion‐sieving property. For example, the cation–chloride co‐transporters have both alkaline ion and chloride ion selectivity but no alkaline ion/chloride ion selectivity. We here demonstrate a method to construct artificial co‐transporters, using a porous organic framework membrane which has a relatively disordered stacking structure and rich quaternary ammonium groups paired with counter‐ions. This imparts the membrane with extremely narrow pores (∼0.3 nm) and almost no surface charge, enabling size‐based high alkaline ion selectivity against other cations, high Cl − selectivity against other anions, but almost no alkaline ion/Cl − selectivity. Such synchronized sieving property allows us to enhance the extraction of high‐value cations (Li + ) by simply feeding excessive low‐value anions (Cl − ). As a demonstration, we realized high‐flux (0.44 mol m −2 h −1 ) and highly selective (selectivity: 185) Li + /Mg 2+ separation by reversing the current industrial brine‐based lithium extraction process, i.e., sieving Li + before removing NaCl.
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