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用于气体分离的PIM-1/多孔氧化石墨烯混合基质膜:揭示孔的作用

PIM-1/Holey Graphene Oxide Mixed Matrix Membranes for Gas Separation: Unveiling the Role of Holes.

作者信息

Luque-Alled Jose Miguel, Tamaddondar Marzieh, Foster Andrew B, Budd Peter M, Gorgojo Patricia

机构信息

Department of Chemical Engineering and Analytical Science, School of Engineering, The University of Manchester, Oxford Road, Manchester M13 9PL, United Kingdom.

Department of Chemistry, School of Natural Sciences, The University of Manchester, Oxford Road, Manchester M13 9PL, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 24;13(46):55517-55533. doi: 10.1021/acsami.1c15640. Epub 2021 Nov 10.

Abstract

PIM-1/holey graphene oxide (GO) mixed matrix membranes (MMMs) have been prepared and their gas separation performance for CO/CH mixtures assessed. Nanopores have been created in the basal plane of gas-impermeable GO by chemical etching reactions, and the resulting holey flakes have been further chemically functionalized, either with octadecylamine (ODA) or with PIM-1 moieties, to aid their dispersion in PIM-1. It is found that nanopores barely promote gas transport through the graphene-like nanofiller for fresh membranes (tested right after preparation); however, the prepared hybrid PIM-1/holey GO membranes exhibit higher CO permeability and CO/CH selectivity than the pure polymer membrane 150 days after preparation and 13 and 15% higher CO permeability for filler contents of 0.1% of octadecylamine-functionalized holey GO and 1% of (PIM-1)-functionalized holey GO, respectively. The most significant improvement is observed for the mitigation of physical aging, as MMMs using 10% of (PIM-1)-functionalized holey GO nanofillers are capable of maintaining up to 70% of their initial CO permeability after 150 days, whereas only 53% is kept for pure PIM-1 after the same period. The gas permeability of the nanofiller has been rationalized with the aid of the Maxwell-Wagner-Sillars equation.

摘要

已制备出PIM-1/多孔氧化石墨烯(GO)混合基质膜(MMMs),并评估了其对CO/CH混合物的气体分离性能。通过化学蚀刻反应在不透气体的GO基面上制造了纳米孔,所得的多孔薄片进一步用十八烷基胺(ODA)或PIM-1部分进行化学功能化,以帮助它们在PIM-1中分散。研究发现,对于新鲜膜(制备后立即测试),纳米孔几乎不会促进气体通过类石墨烯纳米填料的传输;然而,制备的杂化PIM-1/多孔GO膜在制备150天后表现出比纯聚合物膜更高的CO渗透率和CO/CH选择性,对于十八烷基胺功能化多孔GO含量为0.1%和(PIM-1)功能化多孔GO含量为1%的填料,CO渗透率分别高出13%和15%。在缓解物理老化方面观察到最显著的改善,因为使用10%(PIM-1)功能化多孔GO纳米填料的MMMs在150天后能够保持其初始CO渗透率的70%,而同期纯PIM-1仅保持53%。借助麦克斯韦-瓦格纳-西拉斯方程对纳米填料的气体渗透率进行了合理分析。

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