Extrinsically microporous polymer membranes derived from thermally cross-linked perfluorinated aryl-ether-free polymers for gas separation.
basic_science · Level V
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- Record sourced from PubMed, PMID 40764314.
- Also identified by DOI 10.1038/s41467-025-62372-y and PMC identifier 12325600.
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Abstract
State-of-the-art membranes derived from polymers of intrinsic microporosity offer promising alternatives to energy-intensive, thermally driven separation techniques but often suffer from reduced performance under condensable gases or physical aging. Here, extrinsically microporous polymer membranes (EMPMs) are introduced as a distinct class of microporous membranes, fabricated from perfluorinated aryl-ether-free aromatic polymers via defluorination-induced thermal cross-linking. This process generates extrinsic micropores, increases intersegmental distances, and significantly enhances gas permeability. EMPMs exhibit a Brunauer-Emmett-Teller surface area of 552 m<sup>2</sup> g<sup>-1</sup> and demonstrate exceptional plasticization resistance under equimolar CO<sub>2</sub>/CH<sub>4</sub> mixed gas at pressures up to 40 bar. CO<sub>2</sub> permeability increases from 280 to 12,000 Barrer at 1 bar and 35 °C, while CO<sub>2</sub>/N<sub>2</sub> selectivity reaches 46 at -20 °C, surpassing the 2019 polymeric upper bound. Furthermore, extrinsically microporous hollow fiber membranes prepared via dip-coating achieve a CO<sub>2</sub> permeance of 2174 gas permeation units and CO<sub>2</sub>/N<sub>2</sub> selectivity of 30 at -20 °C, highlighting their industrial relevance. This study establishes a scalable method for fabricating high-performance microporous polymeric membranes with exceptional stability for sustainable energy and environmental applications.