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Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles

[Image: see text] Non-oxidative ethanol dehydrogenation is a renewable source of acetaldehyde and hydrogen. The reaction is often catalyzed by supported copper catalysts with high selectivity. The activity and long-term stability depend on many factors, including particle size, choice of support, do...

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Autores principales: Pokorny, Tomas, Vykoukal, Vit, Machac, Petr, Moravec, Zdenek, Scotti, Nicola, Roupcova, Pavla, Karaskova, Katerina, Styskalik, Ales
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10394689/
https://www.ncbi.nlm.nih.gov/pubmed/37538293
http://dx.doi.org/10.1021/acssuschemeng.2c06777
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author Pokorny, Tomas
Vykoukal, Vit
Machac, Petr
Moravec, Zdenek
Scotti, Nicola
Roupcova, Pavla
Karaskova, Katerina
Styskalik, Ales
author_facet Pokorny, Tomas
Vykoukal, Vit
Machac, Petr
Moravec, Zdenek
Scotti, Nicola
Roupcova, Pavla
Karaskova, Katerina
Styskalik, Ales
author_sort Pokorny, Tomas
collection PubMed
description [Image: see text] Non-oxidative ethanol dehydrogenation is a renewable source of acetaldehyde and hydrogen. The reaction is often catalyzed by supported copper catalysts with high selectivity. The activity and long-term stability depend on many factors, including particle size, choice of support, doping, etc. Herein, we present four different synthetic pathways to prepare Cu/SiO(2) catalysts (∼2.5 wt % Cu) with varying copper distribution: hydrolytic sol–gel (sub-nanometer clusters), dry impregnation (A̅ = 3.4 nm; σ = 0.9 nm and particles up to 32 nm), strong electrostatic adsorption (A̅ = 3.1 nm; σ = 0.6 nm), and solvothermal hot injection followed by Cu particle deposition (A̅ = 4.0 nm; σ = 0.8 nm). All materials were characterized by ICP-OES, XPS, N(2) physisorption, STEM-EDS, XRD, RFC N(2)O, and H(2)-TPR and tested in ethanol dehydrogenation from 185 to 325 °C. The sample prepared by hydrolytic sol–gel exhibited high Cu dispersion and, accordingly, the highest catalytic activity. Its acetaldehyde productivity (2.79 g g(–1) h(–1) at 255 °C) outperforms most of the Cu-based catalysts reported in the literature, but it lacks stability and tends to deactivate over time. On the other hand, the sample prepared by simple and cost-effective dry impregnation, despite having Cu particles of various sizes, was still highly active (2.42 g g(–1) h(–1) acetaldehyde at 255 °C). Importantly, it was the most stable sample out of the studied materials. The characterization of the spent catalyst confirmed its exceptional properties: it showed the lowest extent of both coking and particle sintering.
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spelling pubmed-103946892023-08-03 Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles Pokorny, Tomas Vykoukal, Vit Machac, Petr Moravec, Zdenek Scotti, Nicola Roupcova, Pavla Karaskova, Katerina Styskalik, Ales ACS Sustain Chem Eng [Image: see text] Non-oxidative ethanol dehydrogenation is a renewable source of acetaldehyde and hydrogen. The reaction is often catalyzed by supported copper catalysts with high selectivity. The activity and long-term stability depend on many factors, including particle size, choice of support, doping, etc. Herein, we present four different synthetic pathways to prepare Cu/SiO(2) catalysts (∼2.5 wt % Cu) with varying copper distribution: hydrolytic sol–gel (sub-nanometer clusters), dry impregnation (A̅ = 3.4 nm; σ = 0.9 nm and particles up to 32 nm), strong electrostatic adsorption (A̅ = 3.1 nm; σ = 0.6 nm), and solvothermal hot injection followed by Cu particle deposition (A̅ = 4.0 nm; σ = 0.8 nm). All materials were characterized by ICP-OES, XPS, N(2) physisorption, STEM-EDS, XRD, RFC N(2)O, and H(2)-TPR and tested in ethanol dehydrogenation from 185 to 325 °C. The sample prepared by hydrolytic sol–gel exhibited high Cu dispersion and, accordingly, the highest catalytic activity. Its acetaldehyde productivity (2.79 g g(–1) h(–1) at 255 °C) outperforms most of the Cu-based catalysts reported in the literature, but it lacks stability and tends to deactivate over time. On the other hand, the sample prepared by simple and cost-effective dry impregnation, despite having Cu particles of various sizes, was still highly active (2.42 g g(–1) h(–1) acetaldehyde at 255 °C). Importantly, it was the most stable sample out of the studied materials. The characterization of the spent catalyst confirmed its exceptional properties: it showed the lowest extent of both coking and particle sintering. American Chemical Society 2023-07-20 /pmc/articles/PMC10394689/ /pubmed/37538293 http://dx.doi.org/10.1021/acssuschemeng.2c06777 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Pokorny, Tomas
Vykoukal, Vit
Machac, Petr
Moravec, Zdenek
Scotti, Nicola
Roupcova, Pavla
Karaskova, Katerina
Styskalik, Ales
Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title_full Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title_fullStr Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title_full_unstemmed Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title_short Ethanol Dehydrogenation over Copper-Silica Catalysts: From Sub-Nanometer Clusters to 15 nm Large Particles
title_sort ethanol dehydrogenation over copper-silica catalysts: from sub-nanometer clusters to 15 nm large particles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10394689/
https://www.ncbi.nlm.nih.gov/pubmed/37538293
http://dx.doi.org/10.1021/acssuschemeng.2c06777
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