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Updated: Mar 29, 2026

Electrophoretic Crystallization of Ultrathin High-performance Metal-organic Framework Membranes
Published on: August 16, 2018
Regulating the Crystalline Structure and Ion Affinity of Covalent Organic Frameworks for Enhanced Lithium/Magnesium
Chuncai Wang1,2, Shiwen Bao1,2, Yanfeng Gong1,2
1Key Laboratory of Marine Bio-Based Fibers of Shandong Province, Key Laboratory of Shandong Provincial Universities for Advanced Fibers and Composites, College of Materials Science and Engineering, Qingdao University, Qingdao 266071, China.
None:
Selective ion transport is essential for many applications of membrane separation, such as rare metal and high-value element extraction from complex ionic sources. However, efficient regulation of permeability-selectivity remains a major challenge for advanced ionic transport membranes. Herein, we demonstrate that supercritical CO2 (ScCO2) drying combined with crown ether functionalization enables precise modulation of crystallinity and ion-specific affinity in covalent organic framework (COF) membranes. The pristine COF membrane prepared by solution casting was amorphous. Owing to its positively charged framework and sub-nanometer pores, the membrane exhibited a high Li+ transport rate over Mg2+ via a synergistic effect of size exclusion and electrostatic repulsion, resulting in a selectivity of 204. After ScCO2 drying, the crystallinity and structural ordering of the COF membrane were significantly enhanced, leading to a 1.5-fold increase in Li+ flux, accompanied by a moderate decrease in selectivity to 147. To compensate for this trade-off, 12-crown-4 (12C4) was introduced as a Li+ recognition agent into the ScCO2-treated membrane, restoring Li+/Mg2+ selectivity to 187 without compromising Li+ flux. Importantly, the selective Li+ transport performance was maintained in real salt lake brines. This structural-chemical co-regulation strategy provides a versatile approach for optimizing ion transport membranes in complex separation applications.
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