Local atomic structure in tetragonal pure ZrO(2) nanopowders


Autoria(s): ACUNA, Leandro M.; LAMAS, Diego G.; FUENTES, Rodolfo O.; FABREGAS, Ismael O.; Fantini, Marcia Carvalho de Abreu; Craievich, Aldo Felix; PRADO, Rogerio J.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

18/04/2012

18/04/2012

2010

Resumo

The local atomic structures around the Zr atom of pure (undoped) ZrO(2) nanopowders with different average crystallite sizes, ranging from 7 to 40 nm, have been investigated. The nanopowders were synthesized by different wet-chemical routes, but all exhibit the high-temperature tetragonal phase stabilized at room temperature, as established by synchrotron radiation X-ray diffraction. The extended X-ray absorption fine structure (EXAFS) technique was applied to analyze the local structure around the Zr atoms. Several authors have studied this system using the EXAFS technique without obtaining a good agreement between crystallographic and EXAFS data. In this work, it is shown that the local structure of ZrO(2) nanopowders can be described by a model consisting of two oxygen subshells (4 + 4 atoms) with different Zr-O distances, in agreement with those independently determined by X-ray diffraction. However, the EXAFS study shows that the second oxygen subshell exhibits a Debye-Waller (DW) parameter much higher than that of the first oxygen subshell, a result that cannot be explained by the crystallographic model accepted for the tetragonal phase of zirconia-based materials. However, as proposed by other authors, the difference in the DW parameters between the two oxygen subshells around the Zr atoms can be explained by the existence of oxygen displacements perpendicular to the z direction; these mainly affect the second oxygen subshell because of the directional character of the EXAFS DW parameter, in contradiction to the crystallographic value. It is also established that this model is similar to another model having three oxygen subshells, with a 4 + 2 + 2 distribution of atoms, with only one DW parameter for all oxygen subshells. Both models are in good agreement with the crystal structure determined by X-ray diffraction experiments.

LNLS[D04B-XAFS1-4204] - Brazilian Synchrotron Light Laboratory

LNLS[D10B-XPD-4276] - Brazilian Synchrotron Light Laboratory

LNLS[D04B-XAFS1-7248] - Brazilian Synchrotron Light Laboratory

CNPq (Brazil)[490289/2005-3]

CNPq (Brazil)[490580/2008-4]

FONCyT - Agencia Nacional de Promocion Cientifica y Tecnologica (Argentina)[38309]

FONCyT - Agencia Nacional de Promocion Cientifica y Tecnologica (Argentina)[01152]

CONICET (Argentina)[6559]

Latin-American Centre for Physics

Fundacion YPF

Identificador

JOURNAL OF APPLIED CRYSTALLOGRAPHY, v.43, p.227-236, 2010

0021-8898

http://producao.usp.br/handle/BDPI/15944

10.1107/S0021889809054983

http://dx.doi.org/10.1107/S0021889809054983

Idioma(s)

eng

Publicador

WILEY-BLACKWELL PUBLISHING, INC

Relação

Journal of Applied Crystallography

Direitos

closedAccess

Copyright WILEY-BLACKWELL PUBLISHING, INC

Palavras-Chave #X-RAY-ABSORPTION #GEL-COMBUSTION PROCESS #ZIRCONIA POLYMORPHS #NANOCRYSTALLINE ZIRCONIA #POWDER DIFFRACTION #SOLID-SOLUTIONS #FINE-STRUCTURE #MIXED OXIDES #SPECTROSCOPY #STABILIZATION #Crystallography
Tipo

article

original article

publishedVersion