Please use this identifier to cite or link to this item:
http://acervodigital.unesp.br/handle/11449/129739
- Title:
- Theoretical study of the stoichiometric and reduced Ce-Doped TiO2 anatase (001) surfaces
- Instituto Federal de Educação, Ciência e Tecnologia do Sertão Pernambuco (IF Sertão PE)
- Universidade Estadual Paulista (UNESP)
- Univ Barcelona
- 1932-7447
- Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
- Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
- INCTMN-Unesp
- Spanish MINECO
- Generalitat de Catalunya
- XRQTC
- Brazilian scholarship program "Ciencia sem Fronteiras"
- Consorci de Serveis Universitaris de Catalunya (CSUC)
- ICREA Academia Award for Excellence in University Research
- EU (COST Action)
- Spanish MINECO: CTQ2012-30751
- Generalitat de Catalunya: 2014GR97
- Brazilian scholarship program "Ciencia sem Fronteiras": 237539/2012-8
- EU (COST Action): CM1104
- The effects of Ce doping (2.6%) on the oxygen vacancy (V-O) formation energy (Et) and the electronic structure of the anatase TiO2(001) surface were studied by ineans of periodic density functional calculations within the PBE and PBE + U approaches. Several situations were considered for V-o formation, differing in terms of the position in relation to the dopant site (at the surface and subsurface atomic layers). The vacancy energy of formation is almost always lower for the surface than for the bulk, but the difference is still larger with Ce dopant in the subsurface layers. Nevertheless, the Ce-for-Ti substitution is more stable at the outermost layers, indicating thermodynamically favorable dopant migration toward, the oxide surface. The PEE + U approach provides a physically meaningful description of localized d and f electrons in Ti3+ and Ce3+ species, respectively: Moreover, fully localized spin (simple and split) or partially localized spin solutions are found within similar to 0.5 eV range. Not unexpectedly, standard. PBE fails to describe electron-localized solutions, but interestingly, it predicts the same geometries and order of stability of different vacancy positions. The present work provides compelling evidence that oxygen vacancy formation is remarkably facilitated by Ce dopant in TiO2 anatase {001} facets, but only when Ce is in subsurface positions.
- 5-Mar-2015
- Journal Of Physical Chemistry C. Washington: Amer Chemical Soc, v. 119, n. 9, p. 4805-4816, 2015.
- 4805-4816
- Amer Chemical Soc
- http://pubs.acs.org/doi/abs/10.1021/jp5105483
- Acesso restrito
- outro
- http://repositorio.unesp.br/handle/11449/129739
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