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Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction

One-dimensional (1D) core-sheath nanofibers, platinum (Pt)-loaded ceria (CeO(2)) sheath on mesoporous silica (SiO(2)) core were fabricated, characterized, and used as catalysts for the reverse water gas shift reaction (RWGS). CeO(2) nanofibers (NFs) were first prepared by electrospinning (ES), and t...

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Autores principales: Nejadsalim, Aidin, Bashiri, Najmeh, Godini, Hamid Reza, Oliveira, Rafael L., Tufail Shah, Asma, Bekheet, Maged F., Thomas, Arne, Schomäcker, Reinhard, Gurlo, Aleksander, Görke, Oliver
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921642/
https://www.ncbi.nlm.nih.gov/pubmed/36770446
http://dx.doi.org/10.3390/nano13030485
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author Nejadsalim, Aidin
Bashiri, Najmeh
Godini, Hamid Reza
Oliveira, Rafael L.
Tufail Shah, Asma
Bekheet, Maged F.
Thomas, Arne
Schomäcker, Reinhard
Gurlo, Aleksander
Görke, Oliver
author_facet Nejadsalim, Aidin
Bashiri, Najmeh
Godini, Hamid Reza
Oliveira, Rafael L.
Tufail Shah, Asma
Bekheet, Maged F.
Thomas, Arne
Schomäcker, Reinhard
Gurlo, Aleksander
Görke, Oliver
author_sort Nejadsalim, Aidin
collection PubMed
description One-dimensional (1D) core-sheath nanofibers, platinum (Pt)-loaded ceria (CeO(2)) sheath on mesoporous silica (SiO(2)) core were fabricated, characterized, and used as catalysts for the reverse water gas shift reaction (RWGS). CeO(2) nanofibers (NFs) were first prepared by electrospinning (ES), and then Pt nanoparticles were loaded on the CeO(2) NFs using two different deposition methods: wet impregnation and solvothermal. A mesoporous SiO(2) sheath layer was then deposited by sol-gel process. The phase composition, structural, and morphological properties of synthesized materials were investigated by scanning electron microscope (SEM), scanning transmission electron microscopy (STEM), X-ray diffraction (XRD), nitrogen adsorption/desorption method, X-ray photoelectron spectroscopy (XPS), inductively coupled plasma—optical emission spectrometry (ICP-OES) analysis, and CO(2) temperature programmed desorption (CO(2)-TPD). The results of these characterization techniques revealed that the core-sheath NFs with a core diameter between 100 and 300 nm and a sheath thickness of about 40–100 nm with a Pt loading of around 0.5 wt.% were successfully obtained. The impregnated catalyst, Pt-CeO(2) NF@mesoporous SiO(2), showed the best catalytic performance with a CO(2) conversion of 8.9% at 350 °C, as compared to the sample prepared by the Solvothermal method. More than 99% selectivity of CO was achieved for all core-sheath NF-catalysts.
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spelling pubmed-99216422023-02-12 Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction Nejadsalim, Aidin Bashiri, Najmeh Godini, Hamid Reza Oliveira, Rafael L. Tufail Shah, Asma Bekheet, Maged F. Thomas, Arne Schomäcker, Reinhard Gurlo, Aleksander Görke, Oliver Nanomaterials (Basel) Article One-dimensional (1D) core-sheath nanofibers, platinum (Pt)-loaded ceria (CeO(2)) sheath on mesoporous silica (SiO(2)) core were fabricated, characterized, and used as catalysts for the reverse water gas shift reaction (RWGS). CeO(2) nanofibers (NFs) were first prepared by electrospinning (ES), and then Pt nanoparticles were loaded on the CeO(2) NFs using two different deposition methods: wet impregnation and solvothermal. A mesoporous SiO(2) sheath layer was then deposited by sol-gel process. The phase composition, structural, and morphological properties of synthesized materials were investigated by scanning electron microscope (SEM), scanning transmission electron microscopy (STEM), X-ray diffraction (XRD), nitrogen adsorption/desorption method, X-ray photoelectron spectroscopy (XPS), inductively coupled plasma—optical emission spectrometry (ICP-OES) analysis, and CO(2) temperature programmed desorption (CO(2)-TPD). The results of these characterization techniques revealed that the core-sheath NFs with a core diameter between 100 and 300 nm and a sheath thickness of about 40–100 nm with a Pt loading of around 0.5 wt.% were successfully obtained. The impregnated catalyst, Pt-CeO(2) NF@mesoporous SiO(2), showed the best catalytic performance with a CO(2) conversion of 8.9% at 350 °C, as compared to the sample prepared by the Solvothermal method. More than 99% selectivity of CO was achieved for all core-sheath NF-catalysts. MDPI 2023-01-25 /pmc/articles/PMC9921642/ /pubmed/36770446 http://dx.doi.org/10.3390/nano13030485 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nejadsalim, Aidin
Bashiri, Najmeh
Godini, Hamid Reza
Oliveira, Rafael L.
Tufail Shah, Asma
Bekheet, Maged F.
Thomas, Arne
Schomäcker, Reinhard
Gurlo, Aleksander
Görke, Oliver
Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title_full Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title_fullStr Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title_full_unstemmed Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title_short Core-Sheath Pt-CeO(2)/Mesoporous SiO(2) Electrospun Nanofibers as Catalysts for the Reverse Water Gas Shift Reaction
title_sort core-sheath pt-ceo(2)/mesoporous sio(2) electrospun nanofibers as catalysts for the reverse water gas shift reaction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921642/
https://www.ncbi.nlm.nih.gov/pubmed/36770446
http://dx.doi.org/10.3390/nano13030485
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