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dc.contributor.authorDrozd, Valeriya S.
dc.contributor.authorZybina, Nadezhda A.
dc.contributor.authorAbramova, Kristina E.
dc.contributor.authorParfenov, Mikhail Yu
dc.contributor.authorKumar, Umesh
dc.contributor.authorValdés, Héctor
dc.contributor.authorSmirniotis, Panagiotis G.
dc.contributor.authorVorontsov, Alexander V.
dc.date.accessioned2020-06-17T21:46:13Z
dc.date.available2020-06-17T21:46:13Z
dc.date.issued2019-10-15
dc.identifier.citationSolid State Ionics 339 (2019) 115009es_CL
dc.identifier.issn0167-2738
dc.identifier.urihttp://repositoriodigital.ucsc.cl/handle/25022009/1898
dc.description.abstractAnatase nanoparticles containing surface oxygen vacancies (VO) and Ti3+ are of great importance for applications in photocatalysis, batteries, catalysis, sensors among other uses. The properties of VO and their dependence on the size of nanoparticles are of great research interest and could allow obtaining advanced functional materials. In this work, a complete set of oxygen vacancies in an anatase nanoparticle of size 1.1 nm was investigated and compared to those of a twice larger nanoparticle, having the same shape and surface hydroxylation pattern. It turned out that the decrease in the size of the anatase nanoparticle strongly facilitated creation of surface oxygen vacancies and Ti3+. After their creation, oxygen vacancies undergo three transformation paths — (1) small repulsion of surrounding Ti cations with retention of the vacancy, (2) transfer of oxygen anion, leading to the movement of oxygen vacancy to a more stable position, and (3) collapse of oxygen vacancy accompanied by structure deformation towards Magneli-like phase.es_CL
dc.language.isoenes_CL
dc.publisherSolid State Ionicses_CL
dc.source.urihttps://doi.org/10.1016/j.ssi.2019.115009
dc.subjectAnatasees_CL
dc.subjectOxygen vacancieses_CL
dc.subjectDFTes_CL
dc.subjectpm6es_CL
dc.subjectTiO2 nanoparticleses_CL
dc.subjectPhotocatalysises_CL
dc.titleOxygen vacancies in nano-sized TiO2 anatase nanoparticleses_CL
dc.title.alternativeVacantes de oxígeno en nanopartículas de anatasa Tio2 de tamaño nanoes_CL
dc.typeArticlees_CL


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