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dc.contributor.authorKalamaras, Christos M.en
dc.contributor.authorPanagiotopoulou, P.en
dc.contributor.authorKondarides, D. I.en
dc.contributor.authorEfstathiou, Angelos M.en
dc.creatorKalamaras, Christos M.en
dc.creatorPanagiotopoulou, P.en
dc.creatorKondarides, D. I.en
dc.creatorEfstathiou, Angelos M.en
dc.date.accessioned2019-11-21T06:19:36Z
dc.date.available2019-11-21T06:19:36Z
dc.date.issued2009
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/55605
dc.description.abstractA detailed kinetic and mechanistic study of the water-gas shift (WGS) reaction on a 0.5 wt% Pt/TiO2 catalyst has been carried out. The dependence of kinetic reaction rate on the partial pressures of reactants (CO, H2O) and products (H2, CO2), and the concentration and chemical structure of active and inactive reaction intermediates that are found in the "hydrogen-path" and "carbon-path" of the reaction have been investigated in the 200-270 °C range. The most likely mechanistic pathway of the WGS reaction over the present catalytic system is discussed. It has been found that the reaction rate increases with an increase in the concentration of CO or H2O in the feed stream, while it decreases significantly with the addition of H2 in the feed stream. On the contrary, the kinetic reaction rate was found to be practically independent on the concentration of CO2 in the feed stream. The experimental reaction rates that were estimated were fitted to an empirical power-law rate expression from which the kinetic reaction orders with respect to CO, H2O, CO2, and H2 were estimated to be 0.5, 1.0, ∼0.0, and -0.7, respectively. An apparent activation energy of 10.8 kcal/mol was also estimated. The formation of formate and carbonate surface species over the TiO2 support under WGS reaction conditions was proved via SSITKA-DRIFTS experiments. However, these reaction intermediates must be considered as inactive (spectator) species for the steady-state WGS reaction. Additional transient experiments that involved 18O-isotope provided strong support for the red-ox mechanism as the prevailing one on the present Pt/TiO2 catalyst, where labile oxygen and oxygen vacancies of TiO2 near the metal-support interface can participate in the reaction path of the WGS reaction. © 2009 Elsevier Ltd. All rights reserved.en
dc.sourceJournal of Catalysisen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-67349248538&doi=10.1016%2fj.jcat.2009.03.002&partnerID=40&md5=41b5045da10ec0fa95797b7cda767029
dc.subjectPlatinumen
dc.subjectMechanicsen
dc.subjectSpectrum analysisen
dc.subjectHydrogenen
dc.subjectOxygenen
dc.subjectGasesen
dc.subjectActivation energyen
dc.subjectKinetic theoryen
dc.subjectRiversen
dc.subjectMass spectrometryen
dc.subjectFourier transform infrared spectroscopyen
dc.subjectCatalystsen
dc.subjectCatalysisen
dc.subjectTiO2en
dc.subjectCarbon monoxideen
dc.subjectOxygen vacanciesen
dc.subjectMass spectrometersen
dc.subjectReaction ratesen
dc.subjectWater-gas shift reactionen
dc.subjectSSITKA-DRIFTSen
dc.subjectWGS reaction mechanismen
dc.subjectDRIFTSen
dc.subjectKinetic studyen
dc.subjectOperando studiesen
dc.subjectSSITKA-mass spectrometryen
dc.titleKinetic and mechanistic studies of the water-gas shift reaction on Pt/TiO2 catalysten
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1016/j.jcat.2009.03.002
dc.description.volume264
dc.description.issue2
dc.description.startingpage117
dc.description.endingpage129
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 :106</p>en
dc.source.abbreviationJ.Catal.en
dc.contributor.orcidEfstathiou, Angelos M. [0000-0001-8393-8800]
dc.contributor.orcidKalamaras, Christos M. [0000-0001-6809-5948]
dc.gnosis.orcid0000-0001-8393-8800
dc.gnosis.orcid0000-0001-6809-5948


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