Unprecedented gas separation performance of a difluoro-functionalized triptycene-based ladder PIM membrane at low temperature

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Abstract

Advanced membrane materials are playing increasingly important roles in solving global energy intensive separation problems. Herein, we introduce a high-performance intrinsically microporous Tröger's base-derived ladder polymer (DFTTB) as an advanced membrane material for low-temperature gas separation applications. DFTTB was obtained by design of a 2,3-difluoro-functionalized triptycene (DFTrip) building block. The resulting ladder polymer exhibited high microporosity (SBET= 918 m2g−1), good thermal and mechanical properties, and excellent gas separation performance at or above the latest 2015 permeability/selectivity trade-off curves for H2/N2, H2/CH4and O2/N2with H2and O2permeabilities of 5468 and 650 barrer coupled with H2/N2, H2/CH4and O2/N2selectivities of 50, 38 and 6.0, respectively. Furthermore, DFTTB displayed unprecedented performance at sub-ambient temperatures with an O2/N2selectivity of 10.1 and O2permeability of 137 barrer at −30 °C. This high selectivity coupled with up to ∼100-fold higher O2and H2permeability than commercial glassy polymer membrane materials, provides new opportunities for low temperature air separation and hydrogen recovery from petrochemical process streams.

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Ma, X., Zhu, Z., Shi, W., Ji, W., Li, J., Wang, Y., & Pinnau, I. (2021). Unprecedented gas separation performance of a difluoro-functionalized triptycene-based ladder PIM membrane at low temperature. Journal of Materials Chemistry A, 9(9), 5404–5414. https://doi.org/10.1039/d0ta09703a

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