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ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane

Metal–organic frameworks (MOFs) are found to be promising porous crystalline materials for application in gas separation. Considering that mixed matrix membranes usually increase the gas separation performance of a polymer by increasing selectivity, permeability, or both (i.e., perm-selectivity), th...

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Autores principales: Shafiq, Sanaullah, Al-Maythalony, Bassem A., Usman, Muhammad, Ba-Shammakh, Mohammad Saleh, Al-Shammari, Abdallah A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9042350/
https://www.ncbi.nlm.nih.gov/pubmed/35497263
http://dx.doi.org/10.1039/d1ra06271a
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author Shafiq, Sanaullah
Al-Maythalony, Bassem A.
Usman, Muhammad
Ba-Shammakh, Mohammad Saleh
Al-Shammari, Abdallah A.
author_facet Shafiq, Sanaullah
Al-Maythalony, Bassem A.
Usman, Muhammad
Ba-Shammakh, Mohammad Saleh
Al-Shammari, Abdallah A.
author_sort Shafiq, Sanaullah
collection PubMed
description Metal–organic frameworks (MOFs) are found to be promising porous crystalline materials for application in gas separation. Considering that mixed matrix membranes usually increase the gas separation performance of a polymer by increasing selectivity, permeability, or both (i.e., perm-selectivity), the zeolitic imidazole framework-95 (ZIF-95) MOF was dispersed for the first time in polysulfone (PSF) polymer to form mixed matrix membranes (MMMs), namely, ZIF-95/PSF. The fabricated ZIF-95/PSF membranes were examined for the separation of various gases. The characterization of solvothermally synthesized ZIF-95 was carried out using different analyses such as powder X-ray diffraction (PXRD), scanning electron microscopy (SEM), thermogravimetric analysis (TGA), porosity measurements, etc. ZIF-95 was mixed with PSF at 8%, 16%, 24%, and 32% weight percent to form different loading MMMs. SEM analysis of membranes revealed good compatibility/adhesion between the MOF and polymer. The permeability of He, H(2), O(2), CO(2), N(2), and CH(4) were measured for the pure and composite membranes. The ideal selectivity of different gas pairs were calculated and compared with reported mixed matrix membranes. The maximum increases in permeabilities were observed in 32% loaded membrane; nevertheless, these performance/permeability increases were at the expense of a slight decrease of selectivity. In the optimally loaded membrane (i.e., 24 wt% loaded membrane), the permeability of H(2), O(2), and CO(2) increased by 80.2%, 78.0%, and 67.2%, respectively, as compared to the pure membrane. Moreover, the selectivity of H(2)/CH(4), O(2)/N(2), and H(2)/CO(2) gas pairs also increased by 16%, 15%, and 8% in the 24% loaded membrane, respectively.
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spelling pubmed-90423502022-04-28 ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane Shafiq, Sanaullah Al-Maythalony, Bassem A. Usman, Muhammad Ba-Shammakh, Mohammad Saleh Al-Shammari, Abdallah A. RSC Adv Chemistry Metal–organic frameworks (MOFs) are found to be promising porous crystalline materials for application in gas separation. Considering that mixed matrix membranes usually increase the gas separation performance of a polymer by increasing selectivity, permeability, or both (i.e., perm-selectivity), the zeolitic imidazole framework-95 (ZIF-95) MOF was dispersed for the first time in polysulfone (PSF) polymer to form mixed matrix membranes (MMMs), namely, ZIF-95/PSF. The fabricated ZIF-95/PSF membranes were examined for the separation of various gases. The characterization of solvothermally synthesized ZIF-95 was carried out using different analyses such as powder X-ray diffraction (PXRD), scanning electron microscopy (SEM), thermogravimetric analysis (TGA), porosity measurements, etc. ZIF-95 was mixed with PSF at 8%, 16%, 24%, and 32% weight percent to form different loading MMMs. SEM analysis of membranes revealed good compatibility/adhesion between the MOF and polymer. The permeability of He, H(2), O(2), CO(2), N(2), and CH(4) were measured for the pure and composite membranes. The ideal selectivity of different gas pairs were calculated and compared with reported mixed matrix membranes. The maximum increases in permeabilities were observed in 32% loaded membrane; nevertheless, these performance/permeability increases were at the expense of a slight decrease of selectivity. In the optimally loaded membrane (i.e., 24 wt% loaded membrane), the permeability of H(2), O(2), and CO(2) increased by 80.2%, 78.0%, and 67.2%, respectively, as compared to the pure membrane. Moreover, the selectivity of H(2)/CH(4), O(2)/N(2), and H(2)/CO(2) gas pairs also increased by 16%, 15%, and 8% in the 24% loaded membrane, respectively. The Royal Society of Chemistry 2021-10-22 /pmc/articles/PMC9042350/ /pubmed/35497263 http://dx.doi.org/10.1039/d1ra06271a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Shafiq, Sanaullah
Al-Maythalony, Bassem A.
Usman, Muhammad
Ba-Shammakh, Mohammad Saleh
Al-Shammari, Abdallah A.
ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title_full ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title_fullStr ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title_full_unstemmed ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title_short ZIF-95 as a filler for enhanced gas separation performance of polysulfone membrane
title_sort zif-95 as a filler for enhanced gas separation performance of polysulfone membrane
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9042350/
https://www.ncbi.nlm.nih.gov/pubmed/35497263
http://dx.doi.org/10.1039/d1ra06271a
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