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Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen

Highly active metal-free mesoporous phosphated silica was synthesized by a two-step process and used as a SO(2) hydrogenation catalyst. With the assistance of a microwave, MCM-41 was obtained within a 10 min heating process at 180 °C, then a low ratio of P precursor was incorporated into the mesopor...

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Autores principales: Lu, Xinnan, Gaber, Safa, Baker, Mark A., Hinder, Steven J., Polychronopoulou, Kyriaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8469184/
https://www.ncbi.nlm.nih.gov/pubmed/34578756
http://dx.doi.org/10.3390/nano11092440
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author Lu, Xinnan
Gaber, Safa
Baker, Mark A.
Hinder, Steven J.
Polychronopoulou, Kyriaki
author_facet Lu, Xinnan
Gaber, Safa
Baker, Mark A.
Hinder, Steven J.
Polychronopoulou, Kyriaki
author_sort Lu, Xinnan
collection PubMed
description Highly active metal-free mesoporous phosphated silica was synthesized by a two-step process and used as a SO(2) hydrogenation catalyst. With the assistance of a microwave, MCM-41 was obtained within a 10 min heating process at 180 °C, then a low ratio of P precursor was incorporated into the mesoporous silica matrix by a phosphorization step, which was accomplished in oleylamine with trioctylphosphine at 350 °C for 2 h. For benchmarking, the SiO(2) sample without P precursor insertion and the sample with P precursor insertion into the calcined SiO(2) were also prepared. From the microstructural analysis, it was found that the presence of CTAB surfactant was important for the incorporation of active P species, thus forming a highly dispersed, ultrafine (uf) phosphate silica, (Si-P) catalyst. The above approach led to the promising catalytic performance of uf-P@meso-SiO(2) in the selective hydrogenation of SO(2) to H(2)S; the latter reaction is very important in sulfur-containing gas purification. In particular, uf-P@meso-SiO(2) exhibited activity at the temperature range between 150 and 280 °C, especially SO(2) conversion of 94% and H(2)S selectivity of 52% at 220 °C. The importance of the CTAB surfactant can be found in stabilizing the high dispersion of ultrafine P-related species (phosphates). Intrinsic characteristics of the materials were studied using XRD, FTIR, EDX, N(2) adsorption/desorption, TEM, and XPS to reveal the structure of the above catalysts.
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spelling pubmed-84691842021-09-27 Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen Lu, Xinnan Gaber, Safa Baker, Mark A. Hinder, Steven J. Polychronopoulou, Kyriaki Nanomaterials (Basel) Article Highly active metal-free mesoporous phosphated silica was synthesized by a two-step process and used as a SO(2) hydrogenation catalyst. With the assistance of a microwave, MCM-41 was obtained within a 10 min heating process at 180 °C, then a low ratio of P precursor was incorporated into the mesoporous silica matrix by a phosphorization step, which was accomplished in oleylamine with trioctylphosphine at 350 °C for 2 h. For benchmarking, the SiO(2) sample without P precursor insertion and the sample with P precursor insertion into the calcined SiO(2) were also prepared. From the microstructural analysis, it was found that the presence of CTAB surfactant was important for the incorporation of active P species, thus forming a highly dispersed, ultrafine (uf) phosphate silica, (Si-P) catalyst. The above approach led to the promising catalytic performance of uf-P@meso-SiO(2) in the selective hydrogenation of SO(2) to H(2)S; the latter reaction is very important in sulfur-containing gas purification. In particular, uf-P@meso-SiO(2) exhibited activity at the temperature range between 150 and 280 °C, especially SO(2) conversion of 94% and H(2)S selectivity of 52% at 220 °C. The importance of the CTAB surfactant can be found in stabilizing the high dispersion of ultrafine P-related species (phosphates). Intrinsic characteristics of the materials were studied using XRD, FTIR, EDX, N(2) adsorption/desorption, TEM, and XPS to reveal the structure of the above catalysts. MDPI 2021-09-18 /pmc/articles/PMC8469184/ /pubmed/34578756 http://dx.doi.org/10.3390/nano11092440 Text en © 2021 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
Lu, Xinnan
Gaber, Safa
Baker, Mark A.
Hinder, Steven J.
Polychronopoulou, Kyriaki
Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title_full Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title_fullStr Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title_full_unstemmed Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title_short Metal-Free Phosphated Mesoporous SiO(2) as Catalyst for the Low-Temperature Conversion of SO(2) to H(2)S in Hydrogen
title_sort metal-free phosphated mesoporous sio(2) as catalyst for the low-temperature conversion of so(2) to h(2)s in hydrogen
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8469184/
https://www.ncbi.nlm.nih.gov/pubmed/34578756
http://dx.doi.org/10.3390/nano11092440
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