用于高能效气体分离的分层微孔膜

Shuangjiang Luo, Tianliang Han, Can Wang, Ying Sun, Hongjun Zhang, Ruilan Guo and Suojiang Zhang
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引用次数: 4

摘要

合成聚合物膜在天然气脱硫、氢气分离、氦气回收、碳捕获、氧/氮富集等气体分离领域的应用,刺激了高性能膜材料的蓬勃发展。然而,筛分型合成聚合物膜经常在渗透性和选择性之间进行权衡,主要是由于缺乏在控制微孔尺寸分布的同时提高自由体积分数的能力。本文综述了近年来高自由体积聚合物气体分离膜的微孔控制及其气体分离性能的研究进展,重点介绍了沙漏形微腔和双峰分布微腔的膜。系统总结了构建可定制和分层微孔结构、微孔表征和控制气体分离性能的微腔结构的最新策略。关键词:气体分离膜;分层微孔率;微孔尺寸分布;配置自由卷;Solution-diffusion机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hierarchically microporous membranes for highly energy-efficient gas separations

Hierarchically microporous membranes for highly energy-efficient gas separations

The implementation of synthetic polymer membranes in gas separations, ranging from natural gas sweetening, hydrogen separation, helium recovery, carbon capture, oxygen/nitrogen enrichment, etc., has stimulated the vigorous development of high-performance membrane materials. However, size-sieving types of synthetic polymer membranes are frequently subject to a trade-off between permeability and selectivity, primarily due to the lack of ability to boost fractional free volume while simultaneously controlling the micropore size distribution. Herein, we review recent research progress on microporosity manipulation in high-free-volume polymeric gas separation membranes and their gas separation performance, with an emphasis on membranes with hourglass-shaped or bimodally distributed microcavities. State-of-the-art strategies to construct tailorable and hierarchically microporous structures, microporosity characterization, and microcavity architecture that govern gas separation performance are systematically summarized.

Keywords: Gas separation membranes; Hierarchical microporosity; Micropore size distribution; Configurational free volume; Solution–diffusion mechanism.

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来源期刊
Industrial Chemistry & Materials
Industrial Chemistry & Materials chemistry, chemical engineering, functional materials, energy, etc.-
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期刊介绍: Industrial Chemistry & Materials (ICM) publishes significant innovative research and major technological breakthroughs in all aspects of industrial chemistry and materials, with a particular focus on the important innovation of low-carbon chemical industry, energy and functional materials. By bringing researchers, engineers, and policymakers into one place, research is inspired, challenges are solved and the applications of science and technology are accelerated. The global editorial and advisory board members are valued experts in the community. With their support, the rigorous editorial practices and dissemination ensures your research is accessible and discoverable on a global scale. Industrial Chemistry & Materials publishes: ● Communications ● Full papers ● Minireviews ● Reviews ● Perspectives ● Comments
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