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具有前所未有的高H/CO选择性和超高气体渗透率的二维共价有机框架-三维金属有机框架双层膜

Two-Dimensional COF-Three-Dimensional MOF Dual-Layer Membranes with Unprecedentedly High H/CO Selectivity and Ultrahigh Gas Permeabilities.

作者信息

Das Saikat, Ben Teng, Qiu Shilun, Valtchev Valentin

机构信息

Department of Chemistry, Jilin University, Changchun 130012, P. R. China.

Normandie Univ, ENSICAEN, UNICAEN, CNRS, Laboratoire Catalyse et Spectrochimie, 6 Marechal Juin, 14050 Caen, France.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52899-52907. doi: 10.1021/acsami.0c17794. Epub 2020 Nov 11.

Abstract

Composite membranes embodying multilayered architecture have been on an uptrend to tap the synergy between different materials to attain new heights in gas separation performance. In the light of sustainable materials research, covalent organic frameworks (COFs) and metal-organic frameworks (MOFs) have emerged as cutting-edge platforms for molecular-sieving membranes owing to their phenomenal surface areas, ultrahigh porosities, and precise control over chemical functionalities. In this study, we report for the first time a three-dimensional (3D) MOF-mediated strategy where a specially designed MOF film provides the binding sites along the vertical direction to anchor the two-dimensional (2D) COF structural building units. The strong chemical bonding between the 3D MOF and 2D COF provides a new outlook to fabricate 2D COF-based composite membranes. The π-stacked columns of 2D HP-DHPh COF that can contribute to direct pathways for gas transport render the resulting membrane incredibly promising for high-flux gas separation. Besides, the chemical synergy between the MOF and COF endows the thus-developed HP-DHPh COFUiO-66 composite membrane with unprecedented H/CO gas mixture selectivity (32.9) as well as ultrahigh H (108 341.3 Barrer) and CO permeabilities, which significantly outperform the present Robeson upper bound and polymer membranes hitherto reported.

摘要

具有多层结构的复合膜一直在不断发展,以利用不同材料之间的协同作用,在气体分离性能方面达到新的高度。鉴于可持续材料研究,共价有机框架(COF)和金属有机框架(MOF)因其巨大的表面积、超高的孔隙率以及对化学功能的精确控制,已成为分子筛分膜的前沿平台。在本研究中,我们首次报道了一种三维(3D)MOF介导的策略,其中一种特殊设计的MOF膜沿垂直方向提供结合位点,以锚定二维(2D)COF结构构建单元。3D MOF与2D COF之间的强化学键为制备基于2D COF的复合膜提供了新的前景。2D HP-DHPh COF的π堆积柱可形成气体传输的直接通道,使得所得膜在高通量气体分离方面极具潜力。此外,MOF与COF之间的化学协同作用赋予了由此开发的HP-DHPh COF@UiO-66复合膜前所未有的H₂/CO₂气体混合物选择性(32.9)以及超高的H₂(108 341.3 Barrer)和CO₂渗透率,显著超过了目前的Robeson上限以及迄今报道的聚合物膜。

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