Cargando…

IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters

To understand elementary reaction steps in the hydrogenation of CO(2) over copper-based catalysts, we experimentally study the adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters. For this, we react Cu(n)(+) clusters formed by laser ablation with a mixture of H(2) and CO(2) in a flow tube-t...

Descripción completa

Detalles Bibliográficos
Autores principales: Lushchikova, Olga V., Szalay, Máté, Tahmasbi, Hossein, Juurlink, Ludo B. F., Meyer, Jörg, Höltzl, Tibor, Bakker, Joost M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8653698/
https://www.ncbi.nlm.nih.gov/pubmed/34709259
http://dx.doi.org/10.1039/d1cp03119h
_version_ 1784611719459373056
author Lushchikova, Olga V.
Szalay, Máté
Tahmasbi, Hossein
Juurlink, Ludo B. F.
Meyer, Jörg
Höltzl, Tibor
Bakker, Joost M.
author_facet Lushchikova, Olga V.
Szalay, Máté
Tahmasbi, Hossein
Juurlink, Ludo B. F.
Meyer, Jörg
Höltzl, Tibor
Bakker, Joost M.
author_sort Lushchikova, Olga V.
collection PubMed
description To understand elementary reaction steps in the hydrogenation of CO(2) over copper-based catalysts, we experimentally study the adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters. For this, we react Cu(n)(+) clusters formed by laser ablation with a mixture of H(2) and CO(2) in a flow tube-type reaction channel and characterize the products formed by IR multiple-photon dissociation spectroscopy employing the IR free-electron laser FELICE. We analyze the spectra by comparing them to literature spectra of Cu(n)(+) clusters reacted with H(2) and with new spectra of Cu(n)(+) clusters reacted with CO(2). The latter indicate that CO(2) is physisorbed in an end-on configuration when reacted with the clusters alone. Although the spectra for the co-adsorption products evidence H(2) dissociation, no signs for CO(2) activation or reduction are observed. This lack of reactivity for CO(2) is rationalized by density functional theory calculations, which indicate that CO(2) dissociation is hindered by a large reaction barrier. CO(2) reduction to formate should energetically be possible, but the lack of formate observation is attributed to kinetic hindering.
format Online
Article
Text
id pubmed-8653698
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-86536982022-01-06 IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters Lushchikova, Olga V. Szalay, Máté Tahmasbi, Hossein Juurlink, Ludo B. F. Meyer, Jörg Höltzl, Tibor Bakker, Joost M. Phys Chem Chem Phys Chemistry To understand elementary reaction steps in the hydrogenation of CO(2) over copper-based catalysts, we experimentally study the adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters. For this, we react Cu(n)(+) clusters formed by laser ablation with a mixture of H(2) and CO(2) in a flow tube-type reaction channel and characterize the products formed by IR multiple-photon dissociation spectroscopy employing the IR free-electron laser FELICE. We analyze the spectra by comparing them to literature spectra of Cu(n)(+) clusters reacted with H(2) and with new spectra of Cu(n)(+) clusters reacted with CO(2). The latter indicate that CO(2) is physisorbed in an end-on configuration when reacted with the clusters alone. Although the spectra for the co-adsorption products evidence H(2) dissociation, no signs for CO(2) activation or reduction are observed. This lack of reactivity for CO(2) is rationalized by density functional theory calculations, which indicate that CO(2) dissociation is hindered by a large reaction barrier. CO(2) reduction to formate should energetically be possible, but the lack of formate observation is attributed to kinetic hindering. The Royal Society of Chemistry 2021-10-28 /pmc/articles/PMC8653698/ /pubmed/34709259 http://dx.doi.org/10.1039/d1cp03119h Text en This journal is © the Owner Societies https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lushchikova, Olga V.
Szalay, Máté
Tahmasbi, Hossein
Juurlink, Ludo B. F.
Meyer, Jörg
Höltzl, Tibor
Bakker, Joost M.
IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title_full IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title_fullStr IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title_full_unstemmed IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title_short IR spectroscopic characterization of the co-adsorption of CO(2) and H(2) onto cationic Cu(n)(+) clusters
title_sort ir spectroscopic characterization of the co-adsorption of co(2) and h(2) onto cationic cu(n)(+) clusters
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8653698/
https://www.ncbi.nlm.nih.gov/pubmed/34709259
http://dx.doi.org/10.1039/d1cp03119h
work_keys_str_mv AT lushchikovaolgav irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT szalaymate irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT tahmasbihossein irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT juurlinkludobf irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT meyerjorg irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT holtzltibor irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters
AT bakkerjoostm irspectroscopiccharacterizationofthecoadsorptionofco2andh2ontocationiccunclusters