4.8 Review

Recent Progress on Polymers of Intrinsic Microporosity and Thermally Modified Analogue Materials for Membrane-Based Fluid Separations

Journal

SMALL STRUCTURES
Volume 2, Issue 9, Pages -

Publisher

WILEY
DOI: 10.1002/sstr.202100049

Keywords

carbon molecular sieves; gas separations; liquid separations; polyimides; polymers of intrinsic microporosity; thermally rearranged membranes; thin film composite membranes

Funding

  1. King Abdullah University of Science and Technology (KAUST) [BAS/1/1323-01-01, BAS/1/1372-01-01]

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Solution-processable amorphous glassy polymers of intrinsic microporosity (PIMs) show promising applications in gas and liquid separations, but are limited by insufficient gas-pair selectivity, requiring an optimized pore size distribution for improved selectivity.
Solution-processable amorphous glassy polymers of intrinsic microporosity (PIMs) are promising microporous organic materials for membrane-based gas and liquid separations due to their high surface area and internal free volume, thermal and chemical stability, and excellent separation performance. This review provides an overview of the most recent developments in the design and transport properties of novel ladder PIM materials, polyimides of intrinsic microporosity (PIM-PIs), functionalized PIMs and PIM-PIs, PIM-derived thermally rearranged (TR), and carbon molecular sieve (CMS) membrane materials as well as PIM-based thin film composite membranes for a wide range of energyintensive gas and liquid separations. In less than two decades, PIMs have significantly lifted the performance upper bounds in H-2/N-2, H-2/CH4, O-2/N-2, CO2/N-2, and CO2/CH4 separations. However, PIMs are still limited by their insufficient gas-pair selectivity to be considered as promising materials for challenging industrial separations such as olefin/paraffin separations. An optimum pore size distribution is required to further improve the selectivity of a PIM for a given application. Specific attention is given to the potential use of PIM-based CMS membranes for energy-intensive CO2/CH4, N-2/CH4, C2H4/C2H6, and C3H6/C3H8 separations, and thin film composite membranes containing PIM motifs for liquid separations.

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