2021 Annual Meeting
Rational Design of Highly Selective and Plasticization Resistant Polymers of Intrinsic Microporosity (PIMs) Inspired By Competitive Sorption
Herein, we report on mixed-gas and high-pressure transport properties for six PIMs with identical benzodioxane backbones and a diverse set of backbone functionalities. Low-pressure mixed-gas tests indicate a relationship between CO2 sorption affinity and enhancements in CO2/CH4 mixed-gas selectivity compared to pure-gas for all PIMs considered. The best results are reported for amine-functionalized PIM-1 (PIM-NH2), which shows an unprecedented 140% and 250% increase in CO2/CH4 and CO2/N2 mixed-gas selectivity, respectively, compared to that of pure-gas tests at 2 atm. Moreover, PIM-NH2 films retain high mixed-gas selectivity (>20) up to a total mixed-gas pressure of 26 atm in 50/50 CO2/CH4 mixtures, demonstrating strong plasticization resistance. Pure-gas sorption and mixed-gas permeation performance for the six PIMs were compared across a range of reported microporous polymers, elucidating structure/property relationships that can enable rational design of polymers capable to perform well in industrially relevant scenarios. Results demonstrate the promise of primary amine functionalization for developing highly sorption-selective and plasticization-resistant membranes for gas separations.