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用于增强CO分离的离子液体功能化中空纤维膜的开发。

Development of Hollow Fiber Membranes Functionalized with Ionic Liquids for Enhanced CO Separation.

作者信息

Piotrowska Julia A, Jordan Christian, Harasek Michael, Bica-Schröder Katharina

机构信息

Institute of Applied Synthetic Chemistry, TU Wien, Getreidemarkt 9/163, Vienna 1060, Austria.

Institute of Chemical, Environmental and Bioscience Engineering, TU Wien, Getreidemarkt 9/E166, Vienna 1060, Austria.

出版信息

ACS Sustain Chem Eng. 2024 Jul 31;12(32):12236-12248. doi: 10.1021/acssuschemeng.4c04597. eCollection 2024 Aug 12.

Abstract

The combination of CO-selective ionic liquids (ILs) with block copolymers, such as Pebax 1657, has demonstrated an enhancement of the gas separation capabilities of polymeric membranes. In the current work, the development of composite membranes by applying a thin, concentrated selective layer made of Pebax/imidazolium-based ionic liquids (ILs) is presented. The objective of the experiments was to determine the optimized IL loading and investigate how the alteration of the anion impacts the properties of the membranes. Two membrane configurations have been studied: coated flat sheet membranes, supported on a porous poly(ether sulfone) (PES) layer, as well as composite hollow fiber membranes, supported on commercial polypropylene (PP) hollow fibers. Coated hollow fiber composites were fabricated using a continuous coating method, offering a straightforward scalability in the manufacturing process. The determined mechanical pressure stability of hollow fiber composites reached up to 5 bar, indicating their potential for various industrial gas separation applications. It was found that the Pebax 1657-based coating containing 40 wt % [Cmim][NTf] yielded membranes with the best gas separation properties, for both the coated flat sheet and the hollow fiber configurations. The CO permeance of hollow fibers reached 23.29 GPU, whereas the CO/N ideal selectivity stood at 8.7, suggesting the necessity of the further enhancement of the coating technique, which can be achieved, for example, through application of multiple coatings. Nonetheless, the superior ideal selectivity of the CO/CO separation, reaching 12.44, gave a promising outlook for further novel membrane applications, which involve the separation of the aforementioned gases.

摘要

将CO选择性离子液体(ILs)与嵌段共聚物(如Pebax 1657)相结合,已证明可提高聚合物膜的气体分离能力。在当前工作中,展示了通过应用由Pebax/咪唑基离子液体(ILs)制成的薄的、浓缩的选择性层来开发复合膜。实验的目的是确定优化的离子液体负载量,并研究阴离子的变化如何影响膜的性能。研究了两种膜构型:涂覆在多孔聚醚砜(PES)层上的平板膜,以及支撑在商用聚丙烯(PP)中空纤维上的复合中空纤维膜。涂覆的中空纤维复合材料采用连续涂覆方法制备,在制造过程中具有直接的可扩展性。所确定的中空纤维复合材料的机械压力稳定性高达5巴,表明其在各种工业气体分离应用中的潜力。结果发现,含有40 wt%[Cmim][NTf]的基于Pebax 1657的涂层,对于涂覆的平板膜和中空纤维构型,都能产生具有最佳气体分离性能的膜。中空纤维的CO渗透率达到23.29 GPU,而CO/N理想选择性为8.7,这表明需要进一步改进涂覆技术,例如通过应用多层涂层来实现。尽管如此,CO/CO分离的卓越理想选择性达到12.44,为涉及上述气体分离的进一步新型膜应用提供了有前景的展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0016/11323277/b2b19e9ad635/sc4c04597_0014.jpg

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