4.7 Article

Remarkably enhanced gas separation properties of PIM-1 at sub-ambient temperatures

Journal

JOURNAL OF MEMBRANE SCIENCE
Volume 623, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.memsci.2021.119091

Keywords

Intrinsic microporous polymers; Sub-ambient temperature; Permeability; Energetic factor of the ideal diffusivity selectivity; O-2/N-2 ideal selectivity

Funding

  1. National Natural Science Foundation of China [51703036, 22078245]
  2. Innovative Team at the University of the Ministry of Education of China [IRT17R80]
  3. Tianjin Science and Technology Planning Project [18PTZWHZ00210, 19PTSYJC0030]
  4. Foundation of State Key Laboratory of Coal Conversion [J19-20 -907]
  5. program for Guangdong introducing innovative and entrepreneurial team [2016ZT06C412]

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This study comprehensively characterized the gas separation performance of PIM-1 at low temperatures for the first time, showing a continuous decrease in gas permeability and a significant increase in ideal gas pair selectivity as temperature decreases. PIM-1 exhibited high O-2 and CO2 permeability as well as ideal selectivity at -30 degrees C, with the enhanced performance attributed to the shrinkage of micropores in PIM-1 at low temperatures.
Sub-ambient temperature membrane-based separation is attracting more and more attention in solving the industrial energy intensive separation challenges. However, the research on low temperature gas separation properties of polymeric membranes is limited. Here, gas separation performance of an intrinsic microporous polymer (PIM-1) at temperatures of -30, -20, -10, 0, 10, and 30 degrees C were fully characterized for the first time. As the temperature decreases, there was a continuous drop in He, H-2, N-2, O-2, CH4 and CO2 permeability coupled with a sharply increased ideal gas pair selectivity with the overall performance gradually outperformed the latest trade-off curves for H-2/N-2, O-2/N-2, CO2/CH(4 )and CO2/N-2. In which, the O-2 and CO2 permeability of PIM-1 at -30 degrees C reached as much as 159 and 1380 Barrer, combined with O-2/N-2 and CO2/N-2 ideal selectivity of 9.35 and 81.2, respectively. The drop in permeability originated from the decresaed diffusion coefficients that overweigh the solubility increase, whereas the increased ideal selectivity was due to the enhanced ideal diffusion selectivity (a(D)), especially the energetic factor of the ideal diffusivity selectivity upon decreasing temperatures. The higher performance induced by low temperatures derived from the shrinkage of the micmpore in PIM-1 to more size sieving ultra-micropore region. Additionally, an 0 2 permeability of 157 Barrer and O-2/N-2 selectivity of 8.0 for mixed-gas at -20 degrees C under upstream pressure of 16 bar was observed. The results indicate that PIM-1 operates at sub-ambient temperature has great perspective in gas separation applications.

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