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用于分子分离的自立式柔性共价有机框架(COF)膜

Self-standing and flexible covalent organic framework (COF) membranes for molecular separation.

作者信息

Liu Jiangtao, Han Gang, Zhao Dieling, Lu Kangjia, Gao Jie, Chung Tai-Shung

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore.

Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.

出版信息

Sci Adv. 2020 Oct 7;6(41). doi: 10.1126/sciadv.abb1110. Print 2020 Oct.

Abstract

Almost all covalent organic framework (COF) materials conventionally fabricated by solvothermal method at high temperatures and pressures are insoluble and unprocessable powders, which severely hinder their widespread applications. This work develops an effective and facile strategy to construct flexible and free-standing pure COF membranes via the liquid-liquid interface-confined reaction at room temperature and atmospheric pressure. The aperture size and channel chemistry of COF membranes can be rationally designed by bridging various molecular building blocks via strong covalent bonds. Benefiting from the highly-ordered honeycomb lattice, high solvent permeances are successfully obtained and follow the trend of acetonitrile > acetone > methanol > ethanol > isopropanol. Interestingly, the imine-linked COF membrane shows higher nonpolar solvent permeances than b-ketoenamine-linked COF due to their difference in pore polarity. Both kinds of COF membranes exhibit high solvent permeances, precise molecular sieving, excellent shape selectivity, and sufficient flexibility for membrane-based separation science and technology.

摘要

几乎所有通过传统高温高压溶剂热法制备的共价有机框架(COF)材料都是不溶且难以加工的粉末,这严重阻碍了它们的广泛应用。这项工作开发了一种有效且简便的策略,通过在室温和大气压下的液-液界面受限反应来构建柔性且独立的纯COF膜。通过经由强共价键连接各种分子构建块,可以合理设计COF膜的孔径大小和通道化学性质。受益于高度有序的蜂窝晶格,成功获得了高溶剂渗透率,且符合乙腈>丙酮>甲醇>乙醇>异丙醇的趋势。有趣的是,由于孔极性的差异,亚胺连接的COF膜显示出比β-酮烯胺连接的COF更高的非极性溶剂渗透率。两种COF膜都表现出高溶剂渗透率、精确的分子筛分、出色的形状选择性以及足够的柔韧性,适用于基于膜的分离科学与技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33e6/7541068/ace630af6c79/abb1110-F2.jpg

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