Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2

The defect structure and ionic diffusion processes within the anion-deficient, fluorite structured system Ce 1-xY xO 2-x/2 have been investigated at high temperatures (873 K-1073 K) as a function of dopant concentration, x, using a combination of neutron diffraction studies, impedance spectroscopy m...

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Main Authors: Burbano, M, Norberg, S, Hull, S, Eriksson, S, Marrocchelli, D, Madden, P, Watson, G
Format: Journal article
Language:English
Published: 2012
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author Burbano, M
Norberg, S
Hull, S
Eriksson, S
Marrocchelli, D
Madden, P
Watson, G
author_facet Burbano, M
Norberg, S
Hull, S
Eriksson, S
Marrocchelli, D
Madden, P
Watson, G
author_sort Burbano, M
collection OXFORD
description The defect structure and ionic diffusion processes within the anion-deficient, fluorite structured system Ce 1-xY xO 2-x/2 have been investigated at high temperatures (873 K-1073 K) as a function of dopant concentration, x, using a combination of neutron diffraction studies, impedance spectroscopy measurements, and molecular dynamics (MD) simulations using interionic potentials developed from ab initio calculations. Particular attention is paid to the short-range ion-ion correlations, with no strong evidence that the anion vacancies prefer, at high temperature, to reside in the vicinity of either cationic species. However, the vacancy-vacancy interactions play a more important role, with preferential ordering of vacancy pairs along the «111» directions, driven by their strong repulsion at closer distances, becoming dominant at high values of x. This effect explains the presence of a maximum in the ionic conductivity in the intermediate temperature range as a function of increasing x. The wider implications of these conclusions for understanding the structure-property relationships within anion-deficient fluorite structured oxides are briefly discussed, with reference to complementary studies of yttria and/or scandia doped zirconia published previously. © 2011 American Chemical Society.
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spelling oxford-uuid:7434eafa-8fda-4d96-87af-e6b45b52d0032022-03-26T20:01:17ZOxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:7434eafa-8fda-4d96-87af-e6b45b52d003EnglishSymplectic Elements at Oxford2012Burbano, MNorberg, SHull, SEriksson, SMarrocchelli, DMadden, PWatson, GThe defect structure and ionic diffusion processes within the anion-deficient, fluorite structured system Ce 1-xY xO 2-x/2 have been investigated at high temperatures (873 K-1073 K) as a function of dopant concentration, x, using a combination of neutron diffraction studies, impedance spectroscopy measurements, and molecular dynamics (MD) simulations using interionic potentials developed from ab initio calculations. Particular attention is paid to the short-range ion-ion correlations, with no strong evidence that the anion vacancies prefer, at high temperature, to reside in the vicinity of either cationic species. However, the vacancy-vacancy interactions play a more important role, with preferential ordering of vacancy pairs along the «111» directions, driven by their strong repulsion at closer distances, becoming dominant at high values of x. This effect explains the presence of a maximum in the ionic conductivity in the intermediate temperature range as a function of increasing x. The wider implications of these conclusions for understanding the structure-property relationships within anion-deficient fluorite structured oxides are briefly discussed, with reference to complementary studies of yttria and/or scandia doped zirconia published previously. © 2011 American Chemical Society.
spellingShingle Burbano, M
Norberg, S
Hull, S
Eriksson, S
Marrocchelli, D
Madden, P
Watson, G
Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title_full Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title_fullStr Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title_full_unstemmed Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title_short Oxygen Vacancy Ordering and the Conductivity Maximum in Y2O3-Doped CeO2
title_sort oxygen vacancy ordering and the conductivity maximum in y2o3 doped ceo2
work_keys_str_mv AT burbanom oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT norbergs oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT hulls oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT erikssons oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT marrocchellid oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT maddenp oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2
AT watsong oxygenvacancyorderingandtheconductivitymaximuminy2o3dopedceo2