Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution

In this study, novel nanostructures based on Ni-MOF/polysulfone nanofibers were fabricated by microwave-assisted electrospinning method. The final Ni-MOF/polysulfone fibrous nanostructure were immobilized on SiO2 substrates with high physicho-chemical properties. These nanostructures with an average...

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Main Authors: Mohammed H. Geesi, Abduladheem Turki Jalil, Yassine Riadi, Talal A. Aljohani, Ameer A. Alameri
Format: Article
Language:English
Published: Frontiers Media S.A. 2023-01-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2022.1100036/full
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author Mohammed H. Geesi
Abduladheem Turki Jalil
Yassine Riadi
Talal A. Aljohani
Ameer A. Alameri
author_facet Mohammed H. Geesi
Abduladheem Turki Jalil
Yassine Riadi
Talal A. Aljohani
Ameer A. Alameri
author_sort Mohammed H. Geesi
collection DOAJ
description In this study, novel nanostructures based on Ni-MOF/polysulfone nanofibers were fabricated by microwave-assisted electrospinning method. The final Ni-MOF/polysulfone fibrous nanostructure were immobilized on SiO2 substrates with high physicho-chemical properties. These nanostructures with an average diameter of 20 nm and a specific surface area of 1690 m2/g were used as novel adsorption for CH4 gas adsorption. It seems that the integration of novel Ni-MOF compounds into the fibrous network has differentiated these materials from previous samples. Since the experimental parameters significantly affect the specific surface area, the parameters including voltage, concentration, and distance between the collector and source are designed by the fractional factorial method. The results were optimized by contour plots, ANOVA and surface plots, theoretically. The results show that the sample has an adsorption rate of about 5.14 mmoL/g. The improved CH4 gas adsorption performance is attributed to the large specific surface area and porous nature of the Ni-MOF/Ps nanostructure which is more convenient and accessible for CH4 gas adsorption.
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spelling doaj.art-7a50c10b7fe045e196788ca5b0c9cf5e2023-01-30T07:53:17ZengFrontiers Media S.A.Frontiers in Materials2296-80162023-01-01910.3389/fmats.2022.11000361100036Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollutionMohammed H. Geesi0Abduladheem Turki Jalil1Yassine Riadi2Talal A. Aljohani3Ameer A. Alameri4Department of Chemistry, College of Science and Humanities in Al-Kharj, Prince Sattam Bin Abdulaziz University, Al-Kharj, Saudi ArabiaMedical Laboratories Techniques Department, Al-Mustaqbal University College, Hillah, IraqDepartment of Pharmaceutical Chemistry, College of Pharmacy, Prince Sattam Bin Abdulaziz University, Al-Kharj, Saudi ArabiaMaterials Science Research Institute, King Abdulaziz City for Science and Technology, Riyadh, Saudi ArabiaDepartment of Chemistry, University of Babylon, Hillah, IraqIn this study, novel nanostructures based on Ni-MOF/polysulfone nanofibers were fabricated by microwave-assisted electrospinning method. The final Ni-MOF/polysulfone fibrous nanostructure were immobilized on SiO2 substrates with high physicho-chemical properties. These nanostructures with an average diameter of 20 nm and a specific surface area of 1690 m2/g were used as novel adsorption for CH4 gas adsorption. It seems that the integration of novel Ni-MOF compounds into the fibrous network has differentiated these materials from previous samples. Since the experimental parameters significantly affect the specific surface area, the parameters including voltage, concentration, and distance between the collector and source are designed by the fractional factorial method. The results were optimized by contour plots, ANOVA and surface plots, theoretically. The results show that the sample has an adsorption rate of about 5.14 mmoL/g. The improved CH4 gas adsorption performance is attributed to the large specific surface area and porous nature of the Ni-MOF/Ps nanostructure which is more convenient and accessible for CH4 gas adsorption.https://www.frontiersin.org/articles/10.3389/fmats.2022.1100036/fullNi-MOFPs nanofibrous polymerSiO2 substrategas adsorptionsystematic study
spellingShingle Mohammed H. Geesi
Abduladheem Turki Jalil
Yassine Riadi
Talal A. Aljohani
Ameer A. Alameri
Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
Frontiers in Materials
Ni-MOF
Ps nanofibrous polymer
SiO2 substrate
gas adsorption
systematic study
title Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
title_full Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
title_fullStr Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
title_full_unstemmed Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
title_short Hybrids of SiO2 substrate and electrospun Ni-MOF/polysulfone fibers for an efficient removal of CH4 gas pollution
title_sort hybrids of sio2 substrate and electrospun ni mof polysulfone fibers for an efficient removal of ch4 gas pollution
topic Ni-MOF
Ps nanofibrous polymer
SiO2 substrate
gas adsorption
systematic study
url https://www.frontiersin.org/articles/10.3389/fmats.2022.1100036/full
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