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dc.contributor.authorBelessi, Vassiliki C.en
dc.contributor.authorBakas, Thomas V.en
dc.contributor.authorCosta, Costas N.en
dc.contributor.authorEfstathiou, Angelos M.en
dc.contributor.authorPomonis, Phillippos J.en
dc.creatorBelessi, Vassiliki C.en
dc.creatorBakas, Thomas V.en
dc.creatorCosta, Costas N.en
dc.creatorEfstathiou, Angelos M.en
dc.creatorPomonis, Phillippos J.en
dc.date.accessioned2019-11-21T06:16:49Z
dc.date.available2019-11-21T06:16:49Z
dc.date.issued2000
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/55285
dc.description.abstractMixed oxidic and perovskite-type materials based on the La, Sr, Ce and Fe elements were prepared using a mixture of nitrates salts and heating at 1000°C. Three groups of solids were synthesized: (i) La(1-y)Ce(y)FeO3 (y=0.2, 0.3, 0.5), (ii) La(1-x)Sr(x)FeO3 (x=0.2, 0.3, 0.5) and (iii) La(1-x-y)Sr(x)Ce(y)FeO3 (x/y=0.05/0.15, 0.15/0.05, 0.1/0.2, 0.2/0.1, 0.2/0.3 and 0.3/0.2). The structure of the solids was examined by XRD and the main crystal phases determined were LaFeO3, α-Fe2O3 and CeO2 in group (i), LaFeO3 and SrFeO(3-x) in group (ii), and LaFeO3, α-Fe2O3, SrFeO(3-x) and CeO2 in group (iii), while traces of La(OH)3 and SrFe12O19 were also detected. The precise determination of the percentage amount of the iron-containing crystal phases in each solid composition was determined by Mossbauer spectroscopy at 20 K. The ceramic materials had low surface areas and were tested for their catalytic activity for the NO+CO reaction in a flow reactor in the range of 280-560°C. Conversions as high as 90% were achieved at 550°C at a GHSV=54 000h-1. The reaction rate of NO conversion is favored by the increased amount of CeO2 in groups (i) and (iii) of solids that contain cerium. In the case of solids without CeO2 (group ii), the NO conversion is favored by the existence of SrFeO(3-x) phase at low temperatures (280-440°C), while it decreases at high temperatures (440-560°C). The double substituted solids La(1-x-y)Sr(x)Ce(y)FeO3 with x+y>0.3 and y>x were found to be the best catalysts for the NO+CO reaction as compared to the single substituted mixed oxides. Temperature programmed desorption (TPD) studies of NO and CO2 support the view that a synergistic effect takes place between the two phases of CeO2 and SrFeO(3-x), whose co-existence results in the maximum enhancement of activity, via alternative oxidation-reduction cycles in the two phases. (C) 2000 Elsevier Science B.V. Mixed oxidic and perovskite-type materials based on the La, Sr, Ce and Fe elements were prepared using a mixture of nitrates salts and heating at 1000 °C. Three groups of solids were synthesized: (i) La1-yCeyFeO3 (y = 0.2, 0.3, 0.5), (ii) La1-xSrxFeO3 (x = 0.2, 0.3, 0.5) and (iii) La1-x-ySrxCeyFeO3 (x/y = 0.05/0.15, 0.15/0.05, 0.1/0.2, 0.2/0.1, 0.2/0.3 and 0.3/0.2). The structure of the solids was examined by XRD and the main crystal phases determined were LaFeO3, α-Fe2O3 and CeO2 in group (i), LaFeO3 and SrFeO3-x in group (ii), and LaFeO3, α-Fe2O3, SrFeO3-x and CeO2 in group (iii), while traces of La(OH)3 and SrFe12O19 were also detected. The precise determination of the percentage amount of the iron-containing crystal phases in each solid composition was determined by Mossbauer spectroscopy at 20 K. The ceramic materials had low surface areas and were tested for their catalytic activity for the NO+CO reaction in a flow reactor in the range of 280-560 °C. Conversions as high as 90% were achieved at 550 °C at a GHSV = 54 000 h-1. The reaction rate of NO conversion is favored by the increased amount of CeO2 in groups (i) and (iii) of solids that contain cerium. In the case of solids without CeO2 (group ii), the NO conversion is favored by the existence of SrFeO3-x phase at low temperatures (280-440 °C), while it decreases at high temperatures (440-560 °C). The double substituted solids La1-x-ySrxCeyFeO3 with x+y>0.3 and y>x were found to be the best catalysts for the NO+CO reaction as compared to the single substituted mixed oxides. Temperature programmed desorption (TPD) studies of NO and CO2 support the view that a synergistic effect takes place between the two phases of CeO2 and SrFeO3-x, whose co-existence results in the maximum enhancement of activity, via alternative oxidation-reduction cycles in the two phases.en
dc.sourceApplied Catalysis B: Environmentalen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-0034683839&doi=10.1016%2fS0926-3373%2800%2900159-4&partnerID=40&md5=6517f21741c1d820592f65ca3ce00a7e
dc.subjectLanthanum compoundsen
dc.subjectX ray diffraction analysisen
dc.subjectPerovskiteen
dc.subjectMossbaueren
dc.subjectMossbauer spectroscopyen
dc.subjectReductionen
dc.subjectTemperature programmed desorptionen
dc.subjectCatalystsen
dc.subjectCeramic materialsen
dc.subjectCarbon monoxideen
dc.subjectCatalyst activityen
dc.subjectCatalytic reduction of NOen
dc.subjectCO2 TPDen
dc.subjectCrystal atomic structureen
dc.subjectCrystal phasesen
dc.subjectMixed valencesen
dc.subjectNitratesen
dc.subjectNitrogen monoxideen
dc.subjectNitrogen oxidesen
dc.subjectNO TPDen
dc.subjectSynergistic effectsen
dc.titleSynergistic effects of crystal phases and mixed valences in La-Sr-Ce-Fe-O mixed oxidic/perovskitic solids on their catalytic activity for the NO+CO reactionen
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1016/S0926-3373(00)00159-4
dc.description.volume28
dc.description.issue1
dc.description.startingpage13
dc.description.endingpage28
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 :49</p>en
dc.source.abbreviationAppl.Catal.B Environ.en
dc.contributor.orcidEfstathiou, Angelos M. [0000-0001-8393-8800]
dc.contributor.orcidBelessi, Vassiliki C. [0000-0002-9866-7668]
dc.contributor.orcidCosta, Costas N. [0000-0002-8459-0356]
dc.gnosis.orcid0000-0001-8393-8800
dc.gnosis.orcid0000-0002-9866-7668
dc.gnosis.orcid0000-0002-8459-0356


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