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增强渗透性:揭示微孔有机聚合物在混合基质膜中的潜力

Enhancing Permeability: Unraveling the Potential of Microporous Organic Polymers in Mixed Matrix Membranes.

作者信息

Torres Alba, Soto Cenit, Carmona Francisco Javier, Simorte María Teresa, Sanz Inmaculada, Muñoz Raúl, Palacio Laura, Prádanos Pedro, Hernández Antonio, Tena Alberto

机构信息

Surfaces and Porous Materials (SMAP), Associated Research Unit to CSIC, Universidad de Valladolid, Facultad de Ciencias, Paseo Belén 7, Valladolid E-47011, Spain.

Institute of Sustainable Processes (ISP), Dr. Mergelina S/n, Valladolid 47011, Spain.

出版信息

ACS Appl Polym Mater. 2024 Jul 22;6(15):9088-9098. doi: 10.1021/acsapm.4c01379. eCollection 2024 Aug 9.

Abstract

Mixed matrix membranes (MMMs) were formed by using seven polymeric matrices with a wide range of permeabilities. All of the polymeric matrices have been polyimides, namely: P84, Pi-DAPOH, Pi-DAROH, Matrimid, Pi-HABAc, PI-DAM, and PIM-1 in the order of increasing O permeability. A fixed (10%) concentration of a microporous organic polymer (TFAP-Trp), formed by the combination of trifluoroacetophenone and triptycene, was added as a porous filler. The material properties as well as their separation performances for multiple pure gases, specifically the permeabilities of He, N, O, CH, and CO, were measured. The correlation between the relative increase in permeability in MMMs and that of the matrix polymeric membrane has been quantitatively analyzed. This study proves that the increased permeability of MMMs is largely linked to the contribution of the high permeability of the filler. The addition of the TFAP-Trp porous filler proves to be especially beneficial for matrices with low to moderate permeabilities, significantly enhancing the matrix permeability overall. The fitted relationship is approximately linear in accordance with the existing models to predict permeability in dual-phase systems for low proportions of the dispersed phase. An extrapolation allows the evaluation of the permeability of the pure microporous organic polymer, which agrees with the previous values described by the group for different filler contents and in other polymeric matrices. In all cases, the selectivity remains approximately constant while the permeability increases. The addition of TFAP-Trp to all the polymeric matrices led to a moderate improvement of the MMM separation performances, mainly centered on their permeabilities.

摘要

混合基质膜(MMMs)是通过使用七种具有广泛渗透率的聚合物基质形成的。所有聚合物基质均为聚酰亚胺,即按氧气渗透率递增顺序排列的:P84、Pi-DAPOH、Pi-DAROH、Matrimid、Pi-HABAc、PI-DAM和PIM-1。添加了由三氟苯乙酮和三蝶烯组合形成的固定浓度(10%)的微孔有机聚合物(TFAP-Trp)作为多孔填料。测量了材料性能及其对多种纯气体的分离性能,特别是氦气、氮气、氧气、甲烷和一氧化碳的渗透率。定量分析了MMMs中渗透率的相对增加与基质聚合物膜渗透率相对增加之间的相关性。本研究证明,MMMs渗透率的提高在很大程度上与填料的高渗透率贡献有关。添加TFAP-Trp多孔填料对低至中等渗透率的基质特别有益,总体上显著提高了基质渗透率。根据现有的预测双相系统中低比例分散相渗透率的模型,拟合关系近似线性。通过外推可以评估纯微孔有机聚合物的渗透率,这与该研究小组之前针对不同填料含量和其他聚合物基质所描述的值一致。在所有情况下,渗透率增加时选择性大致保持不变。向所有聚合物基质中添加TFAP-Trp导致MMMs分离性能有适度改善,主要集中在其渗透率方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ff4/11320380/47cbb5d6eb33/ap4c01379_0001.jpg

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