Mixed-matrix membranes incorporating hierarchical ZIF-8 towards enhanced CO2/N2 separation.

Smart molecules : open access Pub Date : 2025-03-07 eCollection Date: 2025-06-01 DOI:10.1002/smo.20240066
Ting Xia, Yuyang Wu, Taotao Ji, Wenjing Hu, Kunpeng Yu, Xinyu He, Ben Hang Yin, Yi Liu
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Abstract

Metal-organic framework (MOF) has been widely used as filler of mixed-matrix membranes (MMMs) because of their tunable pore sizes, large surface areas, and rich functional groups. However, a relatively high diffusion barrier in the framework of bulk MOF fillers inevitably reduces gas permeability. Introduction of hierarchically porous structure represents an effective method for reducing guest diffusion resistance with no compromise in gas selectivity. In this study, hierarchical ZIF-8 (H-ZIF-8) was prepared using carboxylated polystyrene (PS-COOH) nanospheres as a hard template. Owing to the introduction of carboxyl groups, electrostatic interaction between PS nanospheres and Zn2+ ions is enhanced, facilitating uniform embedment of PS nanospheres in bulk ZIF-8 filler. After dissolution of PS-COOH nanospheres with dimethylformamide solvents, H-ZIF-8 with tunable textural properties is readily obtained. Gas permeation results indicate that compared with bulk ZIF-8 filler, fast diffusion pathways for guest molecules are established in H-ZIF-8 filler, resulting in a CO2/N2 separation factor (SF) of 48.77 with CO2 permeability of 645.76 Barrer in terms of H-ZIF-8 MMMs with 6 wt % loading, which well exceeds the 2008 Robenson upper bound for CO2/N2 gas pair, thus showing promising prospects for high-efficiency CO2 capture from flue gas.

采用层次化ZIF-8的混合基质膜增强CO2/N2分离。
金属有机骨架(MOF)具有孔径可调、比表面积大、官能团丰富等优点,被广泛应用于混合基膜的填料中。然而,在大块MOF填料的框架中,相对较高的扩散屏障不可避免地降低了气体的渗透性。分层多孔结构的引入是在不影响气体选择性的情况下降低客体扩散阻力的有效方法。本研究以羧化聚苯乙烯(PS-COOH)纳米微球为硬模板制备了层次化ZIF-8 (H-ZIF-8)。由于羧基的引入,PS纳米球与Zn2+离子之间的静电相互作用增强,有利于PS纳米球均匀嵌入ZIF-8填料中。PS-COOH纳米球经二甲基甲酰胺溶剂溶解后,得到了具有可调结构性能的H-ZIF-8。气体渗透结果表明,与散装ZIF-8填料相比,H-ZIF-8填料中建立了客体分子的快速扩散途径,以负载为6 wt %的H-ZIF-8 mm为单位,CO2/N2分离因子(SF)为48.77,CO2渗透率为645.76 Barrer,远远超过2008年CO2/N2气体对的robbenson上限,因此在烟气中高效捕集CO2具有广阔的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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