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dc.contributor.authorOlympiou, G. G.en
dc.contributor.authorKalamaras, Christos M.en
dc.contributor.authorZeinalipour-Yazdi, Constantinos D.en
dc.contributor.authorEfstathiou, Angelos M.en
dc.creatorOlympiou, G. G.en
dc.creatorKalamaras, Christos M.en
dc.creatorZeinalipour-Yazdi, Constantinos D.en
dc.creatorEfstathiou, Angelos M.en
dc.date.accessioned2019-11-21T06:21:48Z
dc.date.available2019-11-21T06:21:48Z
dc.date.issued2007
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/55919
dc.description.abstractSteady-state isotopic transient kinetic analysis (SSITKA) experiments coupled with mass spectrometry were performed for the first time to study essential mechanistic aspects of the water-gas shift (WGS) reaction over alumina-supported Pt, Pd, and Rh catalysts. In particular, the concentrations (μmol g-1) of active intermediate species found in the carbon-path from CO to the CO2 product gas (use of 13CO), and in the hydrogen-path from H2O to the H2 product gas (use of D2O) of the reaction mechanism were determined. It was found that by increasing the reaction temperature from 350 to 500 °C the concentration of active species in both the carbon-path and hydrogen-path increased significantly. Based on the large concentration of active species present in the hydrogen-path (OH/H located on the alumina support), the latter being larger than six equivalent monolayers based on the exposed noble metal surface area (θ > 6.0), the small concentration of OH groups along the periphery of metal-support interface, and the significantly smaller concentration (μmol g-1) of active species present in the carbon-path (adsorbed CO on the noble metal and COOH species on the alumina support and/or the metal-support interface), it might be suggested that diffusion of OH/H species on the alumina support towards catalytic sites present in the hydrogen-path of reaction mechanism might be considered as a slow reaction step. The formation of labile OH/H species is the result of dissociative chemisorption of water on the alumina support, where the role of noble metal is to activate the CO chemisorption and likely to promote formate decomposition into CO2 and H2 products. It was found that there is a good correlation between the surface concentration and binding energy of CO on the noble metal (Pt, Pd or Rh) with the activity of alumina-supported noble metal towards the WGS reaction. © 2007 Elsevier B.V. All rights reserved.en
dc.sourceCatalysis Todayen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-34548127588&doi=10.1016%2fj.cattod.2007.05.002&partnerID=40&md5=32d19f5169d6d0ec8f65f445066c3584
dc.subjectReaction kineticsen
dc.subjectConcentration (process)en
dc.subjectChemisorptionen
dc.subjectSurface chemistryen
dc.subjectCatalyst activityen
dc.subjectTPDen
dc.subjectWater-gas shift reactionen
dc.subjectSSITKAen
dc.subjectCatalytic reaction mechanismsen
dc.subjectDRIFTSen
dc.subjectPrecious metalsen
dc.subjectSteady-state isotopic transient kinetic analysis (SSITKA)en
dc.subjectSupported-noble metal catalystsen
dc.subjectWater-gas shift (WGS) reactionen
dc.titleMechanistic aspects of the water-gas shift reaction on alumina-supported noble metal catalysts: In situ DRIFTS and SSITKA-mass spectrometry studiesen
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1016/j.cattod.2007.05.002
dc.description.volume127
dc.description.issue1-4
dc.description.startingpage304
dc.description.endingpage318
dc.author.faculty002 Σχολή Θετικών και Εφαρμοσμένων Επιστημών / Faculty of Pure and Applied Sciences
dc.author.departmentΤμήμα Χημείας / Department of Chemistry
dc.type.uhtypeArticleen
dc.description.notes<p>Cited By :79</p>en
dc.source.abbreviationCatal Todayen
dc.contributor.orcidEfstathiou, Angelos M. [0000-0001-8393-8800]
dc.contributor.orcidZeinalipour-Yazdi, Constantinos D. [0000-0002-8388-1549]
dc.contributor.orcidKalamaras, Christos M. [0000-0001-6809-5948]
dc.gnosis.orcid0000-0001-8393-8800|0000-0002-8388-1549
dc.gnosis.orcid0000-0001-6809-5948


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