Tang Jiahao, Liao Yu, Pan Zhenxiang, Fang Songjun, Tang Mingxiu, Shao Lu, Han Gang
College of Environmental Science and Engineering, Tianjin Key Laboratory of Environmental Remediation and Pollution Control, Nankai University, 38 Tongyan Road, Tianjin, 300350, China.
MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, State Key Laboratory of Urban Water Resource and Environment (SKLUWRE), School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, 150001, China.
Adv Sci (Weinh). 2025 Apr;12(15):e2415520. doi: 10.1002/advs.202415520. Epub 2025 Feb 20.
Covalent organic frameworks (COFs) have emerged as prominent membrane materials for efficiently fractionating organic molecules and ions due to their unique pore structure. However, the fabrication of free-standing COF nanofilms with high crystallinity remains an arduous undertaking, and feasible methods that can enable precise control over the film microstructure are barely reported. This work conceives an exquisite interface-confined catalytic strategy to prepare Tp-BD(OH) COF nanofilm with an anisotropic structure analogously to conventional polymeric membranes. Experimental data and molecular simulations reveal that the hydroxyl groups on the framework substantially capture and anchor the acid catalyst through hydrogen bonding interactions at the incipient stage of interfacial polycondensation, instigating confined catalysis and self-termination reaction at the interface. The distinctive asymmetric structure endows the Tp-BD(OH) COF nanofilm with a record-breaking pure water permeance of 525.3 L m h bar and unprecedented dye/salt selectivity of 648.6, surpassing other reported COF films and state-of-the-art nanofiltration membranes, as well as enduring structural durability and chemical stability. The implemented interface-confined catalysis strategy opens up a new avenue for regulating the COF nanofilm microstructure and holds broad prospects for the rational design of high-performance membranes for sustainable water purification and treatment.
共价有机框架(COFs)因其独特的孔结构,已成为用于高效分离有机分子和离子的重要膜材料。然而,制备具有高结晶度的独立式COF纳米膜仍然是一项艰巨的任务,而且几乎没有报道过能够精确控制膜微观结构的可行方法。这项工作构思了一种精妙的界面受限催化策略,以制备具有类似传统聚合物膜的各向异性结构的Tp-BD(OH) COF纳米膜。实验数据和分子模拟表明,在界面缩聚的初始阶段,框架上的羟基通过氢键相互作用大量捕获并锚定酸催化剂,从而引发界面处的受限催化和自终止反应。独特的不对称结构赋予Tp-BD(OH) COF纳米膜创纪录的525.3 L m⁻² h⁻¹ bar的纯水通量和648.6的前所未有的染料/盐选择性,超过了其他已报道的COF膜和最先进的纳滤膜,同时还具有持久的结构耐久性和化学稳定性。所实施的界面受限催化策略为调控COF纳米膜微观结构开辟了一条新途径,并为合理设计用于可持续水净化和处理的高性能膜具有广阔前景。