Effect of ionic radius on soot oxidation activity for ceria-based binary metal oxides

dc.contributor.authorAnjana, A.P.
dc.contributor.authorPrasad Dasari, H.P.
dc.contributor.authorHarshini, H.
dc.contributor.authorBabu, G.U.B.
dc.date.accessioned2026-02-05T09:30:05Z
dc.date.issued2019
dc.description.abstractCeO<inf>2</inf> (C) along with binary metal oxides of Ce<inf>0.9</inf>M<inf>0.1</inf>O<inf>2-?</inf> (M = Sn, Hf, Zr, Gd, Sm, and La; CT, CH, CZ CG, CS, and CL) are synthesized using the EDTA–citrate method. Samples having an ionic radius smaller (CT, CH, and CZ) and larger (CG, CS, and CL) than Ce4+ are classified separately, and their soot oxidation activity is analyzed. The incorporation of dopant is confirmed from lattice constant variation in X-ray diffraction result. The critical descriptors for the activity are dopant nature (ionic radius and oxidation-state), single-phase solid solution, lattice strain, reactive (200) and (220) planes, Raman intensity ration (I<inf>ov</inf>/I<inf>F2g</inf>), optical bandgap, reducibility ratio, and surface oxygen vacancy. Smaller ionic radius, isovalent dopants (CH and CZ) create a defect site by lowering the optical bandgap along with improved surface oxygen vacancy concentration and thus enhanced soot oxidation activity. Aliovalent dopant with larger ionic radius shows the involvement of lattice oxygen in oxidation reaction by charge compensation mechanism. CL showed the highest activity amongst larger ionic radius samples. © 2019 Curtin University and John Wiley & Sons, Ltd.
dc.identifier.citationAsia-Pacific Journal of Chemical Engineering, 2019, 14, 3, pp. -
dc.identifier.issn19322135
dc.identifier.urihttps://doi.org/10.1002/apj.2316
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/24572
dc.publisherJohn Wiley and Sons Ltd vgorayska@wiley.com Southern Gate Chichester, West Sussex PO19 8SQ
dc.subjectCerium oxide
dc.subjectEnergy gap
dc.subjectIonic conduction in solids
dc.subjectOptical band gaps
dc.subjectOptical lattices
dc.subjectOxidation
dc.subjectOxygen
dc.subjectSolid solutions
dc.subjectSoot
dc.subjectBinary metal oxides
dc.subjectCharge compensation mechanism
dc.subjectConstant variations
dc.subjectIonic radius
dc.subjectOxidation reactions
dc.subjectOxidation state
dc.subjectRaman intensities
dc.subjectSurface oxygen vacancies
dc.subjectOxygen vacancies
dc.titleEffect of ionic radius on soot oxidation activity for ceria-based binary metal oxides

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