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Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents

The transition to a hydrogen economy requires the development of cost-effective methods for purifying hydrogen from CO. In this study, we explore the possibilities of Cu/ZSM-5 as an adsorbent for this purpose. Samples obtained by cation exchange from aqueous solution (AE) and solid-state exchange wi...

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Autores principales: Mihaylov, Mihail, Ivanova, Elena, Zdravkova, Videlina, Andonova, Stanislava, Drenchev, Nikola, Chakarova, Kristina, Kefirov, Radoslav, Kukeva, Rositsa, Stoyanova, Radostina, Hadjiivanov, Konstantin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746636/
https://www.ncbi.nlm.nih.gov/pubmed/35011328
http://dx.doi.org/10.3390/molecules27010096
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author Mihaylov, Mihail
Ivanova, Elena
Zdravkova, Videlina
Andonova, Stanislava
Drenchev, Nikola
Chakarova, Kristina
Kefirov, Radoslav
Kukeva, Rositsa
Stoyanova, Radostina
Hadjiivanov, Konstantin
author_facet Mihaylov, Mihail
Ivanova, Elena
Zdravkova, Videlina
Andonova, Stanislava
Drenchev, Nikola
Chakarova, Kristina
Kefirov, Radoslav
Kukeva, Rositsa
Stoyanova, Radostina
Hadjiivanov, Konstantin
author_sort Mihaylov, Mihail
collection PubMed
description The transition to a hydrogen economy requires the development of cost-effective methods for purifying hydrogen from CO. In this study, we explore the possibilities of Cu/ZSM-5 as an adsorbent for this purpose. Samples obtained by cation exchange from aqueous solution (AE) and solid-state exchange with CuCl (SE) were characterized by in situ EPR and FTIR, H(2)-TPR, CO-TPD, etc. The AE samples possess mainly isolated Cu(2+) cations not adsorbing CO. Reduction generates Cu(+) sites demonstrating different affinity to CO, with the strongest centres desorbing CO at about 350 °C. The SE samples have about twice higher Cu/Al ratios, as one H(+) is exchanged with one Cu(+) cation. Although some of the introduced Cu(+) sites are oxidized to Cu(2+) upon contact with air, they easily recover their original oxidation state after thermal treatment in vacuum or under inert gas stream. In addition, these Cu(+) centres regenerate at relatively low temperatures. It is important that water does not block the CO adsorption sites because of the formation of Cu(+)(CO)(H(2)O)(x) complexes. Dynamic adsorption studies show that Cu/ZSM-5 selectively adsorbs CO in the presence of hydrogen. The results indicate that the SE samples are very perspective materials for purification of H(2) from CO.
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spelling pubmed-87466362022-01-11 Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents Mihaylov, Mihail Ivanova, Elena Zdravkova, Videlina Andonova, Stanislava Drenchev, Nikola Chakarova, Kristina Kefirov, Radoslav Kukeva, Rositsa Stoyanova, Radostina Hadjiivanov, Konstantin Molecules Article The transition to a hydrogen economy requires the development of cost-effective methods for purifying hydrogen from CO. In this study, we explore the possibilities of Cu/ZSM-5 as an adsorbent for this purpose. Samples obtained by cation exchange from aqueous solution (AE) and solid-state exchange with CuCl (SE) were characterized by in situ EPR and FTIR, H(2)-TPR, CO-TPD, etc. The AE samples possess mainly isolated Cu(2+) cations not adsorbing CO. Reduction generates Cu(+) sites demonstrating different affinity to CO, with the strongest centres desorbing CO at about 350 °C. The SE samples have about twice higher Cu/Al ratios, as one H(+) is exchanged with one Cu(+) cation. Although some of the introduced Cu(+) sites are oxidized to Cu(2+) upon contact with air, they easily recover their original oxidation state after thermal treatment in vacuum or under inert gas stream. In addition, these Cu(+) centres regenerate at relatively low temperatures. It is important that water does not block the CO adsorption sites because of the formation of Cu(+)(CO)(H(2)O)(x) complexes. Dynamic adsorption studies show that Cu/ZSM-5 selectively adsorbs CO in the presence of hydrogen. The results indicate that the SE samples are very perspective materials for purification of H(2) from CO. MDPI 2021-12-24 /pmc/articles/PMC8746636/ /pubmed/35011328 http://dx.doi.org/10.3390/molecules27010096 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
Mihaylov, Mihail
Ivanova, Elena
Zdravkova, Videlina
Andonova, Stanislava
Drenchev, Nikola
Chakarova, Kristina
Kefirov, Radoslav
Kukeva, Rositsa
Stoyanova, Radostina
Hadjiivanov, Konstantin
Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title_full Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title_fullStr Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title_full_unstemmed Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title_short Purification of Hydrogen from CO with Cu/ZSM-5 Adsorbents
title_sort purification of hydrogen from co with cu/zsm-5 adsorbents
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746636/
https://www.ncbi.nlm.nih.gov/pubmed/35011328
http://dx.doi.org/10.3390/molecules27010096
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