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Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas

Transformation of carbon oxides into valuable feedstocks is an important challenge nowadays. Carbon oxide hydrogenation to hydrocarbons over iron-based catalysts is one of the possible ways for this transformation to occur. Carbon supports effectively increase the dispersion of such catalysts but po...

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Autores principales: Chernyak, Sergei A., Stolbov, Dmitrii N., Maslakov, Konstantin I., Kazantsev, Ruslan V., Eliseev, Oleg L., Moskovskikh, Dmitry O., Savilov, Serguei V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9783882/
https://www.ncbi.nlm.nih.gov/pubmed/36558343
http://dx.doi.org/10.3390/nano12244491
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author Chernyak, Sergei A.
Stolbov, Dmitrii N.
Maslakov, Konstantin I.
Kazantsev, Ruslan V.
Eliseev, Oleg L.
Moskovskikh, Dmitry O.
Savilov, Serguei V.
author_facet Chernyak, Sergei A.
Stolbov, Dmitrii N.
Maslakov, Konstantin I.
Kazantsev, Ruslan V.
Eliseev, Oleg L.
Moskovskikh, Dmitry O.
Savilov, Serguei V.
author_sort Chernyak, Sergei A.
collection PubMed
description Transformation of carbon oxides into valuable feedstocks is an important challenge nowadays. Carbon oxide hydrogenation to hydrocarbons over iron-based catalysts is one of the possible ways for this transformation to occur. Carbon supports effectively increase the dispersion of such catalysts but possess a very low bulk density, and their powders can be toxic. In this study, spark plasma sintering was used to synthesize new bulk and dense potassium promoted iron-based catalysts, supported on N-doped carbon nanomaterials, for hydrocarbon synthesis from syngas. The sintered catalysts showed high activity of up to 223 μmol(CO)/g(Fe)/s at 300–340 °C and a selectivity to C(5+) fraction of ~70% with a high portion of olefins. The promising catalyst performance was ascribed to the high dispersity of iron carbide particles, potassium promotion of iron carbide formation and stabilization of the active sites with nitrogen-based functionalities. As a result, a bulk N-doped carbon-supported iron catalyst with 3D structure was prepared, for the first time, by a fast method, and demonstrated high activity and selectivity in hydrocarbon synthesis. The proposed technique can be used to produce well-shaped carbon-supported catalysts for syngas conversion.
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spelling pubmed-97838822022-12-24 Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas Chernyak, Sergei A. Stolbov, Dmitrii N. Maslakov, Konstantin I. Kazantsev, Ruslan V. Eliseev, Oleg L. Moskovskikh, Dmitry O. Savilov, Serguei V. Nanomaterials (Basel) Article Transformation of carbon oxides into valuable feedstocks is an important challenge nowadays. Carbon oxide hydrogenation to hydrocarbons over iron-based catalysts is one of the possible ways for this transformation to occur. Carbon supports effectively increase the dispersion of such catalysts but possess a very low bulk density, and their powders can be toxic. In this study, spark plasma sintering was used to synthesize new bulk and dense potassium promoted iron-based catalysts, supported on N-doped carbon nanomaterials, for hydrocarbon synthesis from syngas. The sintered catalysts showed high activity of up to 223 μmol(CO)/g(Fe)/s at 300–340 °C and a selectivity to C(5+) fraction of ~70% with a high portion of olefins. The promising catalyst performance was ascribed to the high dispersity of iron carbide particles, potassium promotion of iron carbide formation and stabilization of the active sites with nitrogen-based functionalities. As a result, a bulk N-doped carbon-supported iron catalyst with 3D structure was prepared, for the first time, by a fast method, and demonstrated high activity and selectivity in hydrocarbon synthesis. The proposed technique can be used to produce well-shaped carbon-supported catalysts for syngas conversion. MDPI 2022-12-19 /pmc/articles/PMC9783882/ /pubmed/36558343 http://dx.doi.org/10.3390/nano12244491 Text en © 2022 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
Chernyak, Sergei A.
Stolbov, Dmitrii N.
Maslakov, Konstantin I.
Kazantsev, Ruslan V.
Eliseev, Oleg L.
Moskovskikh, Dmitry O.
Savilov, Serguei V.
Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title_full Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title_fullStr Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title_full_unstemmed Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title_short Graphene Nanoflake- and Carbon Nanotube-Supported Iron–Potassium 3D-Catalysts for Hydrocarbon Synthesis from Syngas
title_sort graphene nanoflake- and carbon nanotube-supported iron–potassium 3d-catalysts for hydrocarbon synthesis from syngas
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9783882/
https://www.ncbi.nlm.nih.gov/pubmed/36558343
http://dx.doi.org/10.3390/nano12244491
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