稳健的甲氧基共价有机框架膜实现了高效的近分子量选择性

Yanqing Xu , Jiaqi Xiong , Chenfei Lin , Yixiang Yu , Qite Qiu , Junbin Liao , Huimin Ruan , Arcadio Sotto , Jiangnan Shen
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引用次数: 0

摘要

均匀的孔径对分离膜的分子筛分至关重要。传统的纳滤聚合物膜由于无序链填充和快速交联,难以精确控制结构,导致孔径大小不一,分子识别能力差。共价有机框架(COFs)提供有序的多孔结构,以增强分子选择性。我们通过界面聚合,调整孔隙通道官能团,合成了具有三苯胺衍生物的复合COFs膜,以实现高透水性和大小选择性分子保留。TFB-OMe-TAPA COFs膜具有明显的分离特性,可分离不同分子大小的溶质。采用三级级联工艺对不同电荷的二元分子进行分馏,对非均相电荷分子的分离系数为26.7。这项工作揭示了COF膜在近分子量体系中的选择性,扩大了它们在分子分离中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Robust methoxy-based covalent organic frameworks membranes enable efficient near-molecular-weight selectivity

Robust methoxy-based covalent organic frameworks membranes enable efficient near-molecular-weight selectivity
Uniform pore size is essential for molecular sieving in separation membranes. Traditional nanofiltration (NF) polymer membranes struggle with precise structure control due to random chain packing and rapid cross-linking, leading to varied pore sizes and poor molecular discrimination. Covalent organic frameworks (COFs) offer ordered porous structures for enhanced molecular selectivity. We synthesized composite COFs membranes with triphenylamine derivatives through interfacial polymerization, adjusting pore channel functional groups to achieve high water permeance and size-selective molecule retention. The TFB-OMe-TAPA COFs membrane demonstrated sharp rejection profiles, separating solutes of different molecular sizes. A three-stage cascade process was used to fractionate binary molecules with varying charges, achieving a separation factor of 26.7 for heterogeneous charge molecules. This work reveals the selectivity of COF membranes in near-molecular-weight systems, expanding their potential in molecular separations.
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