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Unexpectedly Strong Size-Sieving Ability in Carbonized Polybenzimidazole for Membrane H2/CO2 Separation

  • Maryam Omidvar
  • , Hien Nguyen
  • , Huang Liang Huang
  • , Cara M. Doherty
  • , Anita J. Hill
  • , Christopher M. Stafford
  • , Xianshe Feng
  • , Mark T. Swihart
  • , Haiqing Lin
  • SUNY Buffalo
  • CSIRO
  • National Institute of Standards and Technology
  • University of Waterloo

Research output: Contribution to journalArticlepeer-review

102 Scopus citations

Abstract

Polymers with high permeability and strong size-sieving ability are needed for H2/CO2 separation at temperatures ranging from 100 to 300 °C to enable an energy-efficient precombustion CO2 capture process. However, such polymers usually suffer from a permeability/selectivity tradeoff, that is, polymers with high permeability tend to exhibit a weak size-sieving ability and thus low selectivity. Herein, we demonstrate that carbonization of a suitable polymer precursor (i.e., polybenzimidazole or PBI) generates microcavities (leading to high H2 permeability) and ultramicroporous channels (leading to strong size-sieving ability and thus high H2/CO2 selectivity). Specifically, carbonization of PBI at 900 °C (CMS@900) doubles H2 permeability and increases H2/CO2 selectivity from 14 to 80 at 150 °C. When tested with simulated syngas-containing equimolar H2 and CO2 in the presence of water vapor for 120 h, CMS@900 exhibits stable H2 permeability of ≈36 barrer and H2/CO2 selectivity of ≈53 at 150 °C, above Robeson's 2008 upper bound and demonstrating robustness against physical aging and CO2 plasticization.

Original languageEnglish
Pages (from-to)47365-47372
Number of pages8
JournalACS Applied Materials and Interfaces
Volume11
Issue number50
DOIs
StatePublished - Dec 18 2019

Keywords

  • H/CO separation
  • carbon capture
  • carbon molecular sieve membranes
  • hydrogen production
  • polybenzimidazole

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