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多孔超交联聚合物的制备、促进气体渗透性及分子模拟,其嵌入了基于 6FDA 的聚酰亚胺混合基质膜。

Fabrication, Facilitating Gas Permeability, and Molecular Simulations of Porous Hypercrosslinked Polymers Embedding 6FDA-Based Polyimide Mixed-Matrix Membranes.

机构信息

School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin 300130, China.

Department of Chemical and Biomolecular Engineering, National University of Singpore, 4 Engineering Drive 4, Singapore 117585, Singapore.

出版信息

Molecules. 2023 Feb 21;28(5):2028. doi: 10.3390/molecules28052028.

Abstract

Novel polymers applied in economic membrane technologies are a perennial hot topic in the fields of natural gas purification and O enrichment. Herein, novel hypercrosslinked polymers (HCPs) incorporating 6FDA-based polyimide (PI) MMMs were prepared via a casting method for enhancing transport of different gases (CO, CH, O, and N). Intact HCPs/PI MMMs could be obtained due to good compatibility between the HCPs and PI. Pure gas permeation experiments showed that compared with pure PI film, the addition of HCPs effectively promotes gas transport, increases gas permeability, and maintains ideal selectivity. The permeabilities of HCPs/PI MMMs toward CO and O were as high as 105.85 Barrer and 24.03 Barrer, respectively, and the ideal selectivities of CO/CH and O/N were 15.67 and 3.00, respectively. Molecular simulations further verified that adding HCPs was beneficial to gas transport. Thus, HCPs have potential utility in fabrication of MMMs for facilitating gas transport in the fields of natural gas purification and O enrichment.

摘要

新型聚合物在经济膜技术中的应用是天然气净化和 O2富集中的一个永恒的热门话题。在此,通过浇铸法制备了新型超交联聚合物(HCPs)与基于 6FDA 的聚酰亚胺(PI)MMMs,以增强不同气体(CO、CH、O 和 N)的传输。由于 HCPs 和 PI 之间具有良好的相容性,因此可以获得完整的 HCPs/PI MMMs。纯气体渗透实验表明,与纯 PI 膜相比,添加 HCPs 可有效促进气体传输,提高气体渗透性,并保持理想的选择性。HCPs/PI MMMs 对 CO 和 O2的渗透率分别高达 105.85 和 24.03 Barrer,CO/CH 和 O/N 的理想选择性分别为 15.67 和 3.00。分子模拟进一步证实,添加 HCPs 有利于气体传输。因此,HCPs 在制备 MMMs 方面具有潜在的应用价值,可促进天然气净化和 O2富集领域的气体传输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b7f7/10003910/b0f9f81d3711/molecules-28-02028-g001.jpg

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