AI Article Synopsis

  • - Polyimides are promising materials for gas separation membranes due to their selective permeability and ability to operate under various temperatures and pressures, and current research is focusing on enhancing their performance through various fillers.
  • - Researchers tested butylcalix[n]arene macrocycles (PTBCs) with different sizes as fillers in a thermoplastic polyimide to create nanocomposite membranes, using concentrations from 1-9 wt%.
  • - The study involved preparation of films through a pre-mixing and solvent casting process, followed by characterization of their properties and gas transport, showing that the addition of these nanoporous fillers improved molecular transport efficiency.

Article Abstract

Polyimides are a polymer class that has been extensively investigated as a membrane material for gas separation owing to its interesting permselective properties in a wide range of operation temperatures and pressures. In order to improve their properties, the addition of different filler types is currently studied. -Butylcalix[n]arene macrocycles (PTBCs) with different cavity sizes (PTBC4, PTBC6, PTBC8) were used as fillers in a commercial thermoplastic polyimide, with a concentration in the range 1-9 wt%, to develop nanocomposite membranes for gas separation. The selected macrocycles are attractive organic compounds owing to their porous structure and affinity with organic polymers. The nanocomposite membranes were prepared in the form of films in which the polymeric matrix is a continuous phase incorporating the dispersed additives. The preparation was carried out according to a pre-mixing approach in a mutual solvent, and the solution casting was followed by a controlled solvent evaporation. The films were characterized by investigating their miscibility, morphology, thermal and spectral properties. The gas transport through these films was examined as a function of the temperature and also time. The results evidenced that the incorporation of the chosen nanoporous fillers can be exploited to enhance molecular transport, offering additional pathways and promoting rearrangements of the polymeric chains.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10892679PMC
http://dx.doi.org/10.3390/polym16040460DOI Listing

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