Affiliations 

  • 1 Bharat Ratna Prof. CNR Rao Research Centre, P. G. Department of Chemistry, Basaveshwar Science College, Bagalkot 587101, India
  • 2 Department of Engineering Physics, K.L.E Institute of Technology, Hubballi 580030, India
  • 3 Department of Mechanical Engineering, Manipal Institute of Technology Bengaluru, Manipal Academy of Higher Education, Manipal, Karnataka, India-576104
  • 4 School of Mechanical Engineering, KLE Technological University, Vidya Nagar, Hubballi 580031, India
  • 5 Department of Industrial Chemistry, Vijayanagara Sri Krishnadevaraya University, Ballari 583105, India
  • 6 Centre of Excellence in Biotechnology Research, King Saud University, Riyadh, Saudi Arabia
  • 7 School of Electronic and Information Engineering, Chongqing Three Gorges University, Wanzhou, 404000, China
  • 8 Faculty of Health and Life Sciences, INTI International University, Putra Nilai, 71800 Nilai, Negeri Sembilan, Malaysia
  • 9 Department of Botany and Microbiology, College of Science, King Saud University, P.O. 2455, Riyadh, 11451, Saudi Arabia
Heliyon, 2023 Nov;9(11):e21992.
PMID: 38034709 DOI: 10.1016/j.heliyon.2023.e21992

Abstract

The air separation (O2/N2) based on polymeric membranes is critical because it is more energy efficient than traditional methods. Dense polymeric membranes are now the main stay of industrial processes that generate oxygen and nitrogen enriched gas. Though, regular polymeric membranes often fall short of selective pressure demands because O2 and N2 gases have such comparable equivalent diameters. While polymer composites have their benefits, nanocomposite (NCs) allows for the production of high-performance barriers. Utilising Matrimid® 5218 (Matrimid) as the base framework and multiwall carbon nanotube (MWCNT) as the filler, a novel NCs for O2/N2 separation was developed. Both matrimid and MWCNTs were chemically modified quaternization and functionalizing the MWCNTs. The membranes were casted using solution casting with a combination of quaternized matrimid and functionalized multi-walled carbon nanotubes (f-MWCNT). When f-MWCNT was added to quaternized matrimid, it created interfacial compatibility, which increased O2/N2 selectivity and permeability by 65 % and 35 %, respectively. In the current study, increasing O2 diffusivity and O2/N2 solubility selectivity resulted in improved performance, this paves a way for manufacturing innovation.

* Title and MeSH Headings from MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.

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