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H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion

Green hydrogen introduction in hard-to-abate processes is held back by the cost of substituting steam reforming plants with electrolyzers. However, green hydrogen can be integrated in properly modified reforming processes. The process proposed here involves the substitution of steam reforming with o...

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Autores principales: De Maron, Jacopo, Mafessanti, Rodolfo, Gramazio, Pio, Orfei, Elisabetta, Fasolini, Andrea, Basile, Francesco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823839/
https://www.ncbi.nlm.nih.gov/pubmed/36615963
http://dx.doi.org/10.3390/nano13010053
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author De Maron, Jacopo
Mafessanti, Rodolfo
Gramazio, Pio
Orfei, Elisabetta
Fasolini, Andrea
Basile, Francesco
author_facet De Maron, Jacopo
Mafessanti, Rodolfo
Gramazio, Pio
Orfei, Elisabetta
Fasolini, Andrea
Basile, Francesco
author_sort De Maron, Jacopo
collection PubMed
description Green hydrogen introduction in hard-to-abate processes is held back by the cost of substituting steam reforming plants with electrolyzers. However, green hydrogen can be integrated in properly modified reforming processes. The process proposed here involves the substitution of steam reforming with oxy-reforming, which is the coupling of the former with catalytic partial oxidation (CPO), exploiting the pure oxygen coproduced during electrolysis to feed CPO, which allows for better heat exchange thanks to its exothermic nature. With the aim of developing tailored catalysts for the oxy-reforming process, Ce(0.5)Zr(0.5)O(2) was synthetized by microemulsion and impregnated with Rh. The Ce-based supports were calcined at different temperatures (750 and 900 °C) and the catalysts were reduced at 750 °C or 500 °C. Tuning the calcination temperature allowed for an increase in the support surface area, resulting in well-dispersed Rh species that provided a high reducibility for both the metal active phase and the Ce-based support. This allowed for an increase in methane conversion under different conditions of contact time and pressure and the outperformance of the other catalysts. The higher activity was related to well-dispersed Rh species interacting with the support that provided a high concentration of surface OH* on the Ce-based support and increased methane dissociation. This anticipated the occurrence and the extent of steam reforming over the catalytic bed, producing a smoother thermal profile.
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spelling pubmed-98238392023-01-08 H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion De Maron, Jacopo Mafessanti, Rodolfo Gramazio, Pio Orfei, Elisabetta Fasolini, Andrea Basile, Francesco Nanomaterials (Basel) Article Green hydrogen introduction in hard-to-abate processes is held back by the cost of substituting steam reforming plants with electrolyzers. However, green hydrogen can be integrated in properly modified reforming processes. The process proposed here involves the substitution of steam reforming with oxy-reforming, which is the coupling of the former with catalytic partial oxidation (CPO), exploiting the pure oxygen coproduced during electrolysis to feed CPO, which allows for better heat exchange thanks to its exothermic nature. With the aim of developing tailored catalysts for the oxy-reforming process, Ce(0.5)Zr(0.5)O(2) was synthetized by microemulsion and impregnated with Rh. The Ce-based supports were calcined at different temperatures (750 and 900 °C) and the catalysts were reduced at 750 °C or 500 °C. Tuning the calcination temperature allowed for an increase in the support surface area, resulting in well-dispersed Rh species that provided a high reducibility for both the metal active phase and the Ce-based support. This allowed for an increase in methane conversion under different conditions of contact time and pressure and the outperformance of the other catalysts. The higher activity was related to well-dispersed Rh species interacting with the support that provided a high concentration of surface OH* on the Ce-based support and increased methane dissociation. This anticipated the occurrence and the extent of steam reforming over the catalytic bed, producing a smoother thermal profile. MDPI 2022-12-22 /pmc/articles/PMC9823839/ /pubmed/36615963 http://dx.doi.org/10.3390/nano13010053 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
De Maron, Jacopo
Mafessanti, Rodolfo
Gramazio, Pio
Orfei, Elisabetta
Fasolini, Andrea
Basile, Francesco
H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title_full H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title_fullStr H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title_full_unstemmed H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title_short H(2) Production by Methane Oxy-Reforming: Effect of Catalyst Pretreatment on the Properties and Activity of Rh-Ce(0.5)Zr(0.5)O(2) Synthetized by Microemulsion
title_sort h(2) production by methane oxy-reforming: effect of catalyst pretreatment on the properties and activity of rh-ce(0.5)zr(0.5)o(2) synthetized by microemulsion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823839/
https://www.ncbi.nlm.nih.gov/pubmed/36615963
http://dx.doi.org/10.3390/nano13010053
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