4.6 Article

The synthesis, chain-packing simulation and long-term gas permeability of highly selective spirobifluorene-based polymers of intrinsic microporosity

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 6, Issue 22, Pages 10507-10514

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ta02601g

Keywords

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Funding

  1. EU [608490]
  2. EPSRC (UK) [EP/M01486X/1, EP/K008102/2]
  3. US National Science Foundation [DMR-1604376]
  4. EPSRC [EP/R000468/1, EP/K008102/2, EP/M01486X/1] Funding Source: UKRI

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Membranes composed of Polymers of Intrinsic Microporosity (SBF-PIMs) have potential for commercial gas separation. Here we report a combined simulation and experimental study to investigate the effect on polymer microporosity and gas permeability by placing simple substituents such as methyl, t-butyl and fused benzo groups onto PIMs derived from spirobifluorene (PIM-SBFs). It is shown that methyl or t-butyl substituents both cause a large increase in gas permeabilities with four methyl groups enhancing the concentration of ultramicropores (<0.7 nm), which contribute to selective gas transport. The t-butyl substituents lower selectivity by generating a greater concentration of larger, less selective, micropores (>1.0 nm). Long-term ageing studies (>3.5 years) demonstrate the potential of PIM-SBFs as highperformance membrane materials for gas separations. In particular, the data for the PIM derived from tetramethyl substituted SBF reaches the proposed 2015 Robeson upper bound for O-2/N-2 and, hence, hold promise for the oxygen or nitrogen enrichment of air. Mixed gas permeation measurements for CO2/CH4 of the aged PIM-SBFs also demonstrate their potential for natural gas or biogas upgrading.

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