Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria

Rare-earth doped ceria materials are amongst the top choices for use in electrolytes and composite electrodes in intermediate temperature solid oxide fuel cells. Trivalent acceptor dopants such as gadolinium, which mediate the ionic conductivity in ceria by creating oxygen vacancies, have a tendency...

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Main Authors: Soumitra Sulekar, Mehrad Mehr, Ji Hyun Kim, Juan Claudio Nino
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Inorganics
Subjects:
Online Access:https://www.mdpi.com/2304-6740/9/8/63
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spelling doaj-90ed13e5b15d406bab18ddb15b56ad832021-08-26T13:54:22ZengMDPI AGInorganics2304-67402021-08-019636310.3390/inorganics9080063Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped CeriaSoumitra Sulekar0Mehrad Mehr1Ji Hyun Kim2Juan Claudio Nino3Department of Materials Science and Engineering, University of Florida, Gainesville, FL 32611, USADepartment of Materials Science and Engineering, University of Florida, Gainesville, FL 32611, USADepartment of Materials Science and Engineering, University of Florida, Gainesville, FL 32611, USADepartment of Materials Science and Engineering, University of Florida, Gainesville, FL 32611, USARare-earth doped ceria materials are amongst the top choices for use in electrolytes and composite electrodes in intermediate temperature solid oxide fuel cells. Trivalent acceptor dopants such as gadolinium, which mediate the ionic conductivity in ceria by creating oxygen vacancies, have a tendency to segregate at grain boundaries and triple points. This leads to formation of ionically resistive blocking grain boundaries and necessitates high operating temperatures to overcome this barrier. In an effort to improve the grain boundary conductivity, we studied the effect of a modified sintering cycle, where 10 mol% gadolinia doped ceria was sintered under a reducing atmosphere and subsequently reoxidized. A detailed analysis of the complex impedance, conductivity, and activation energy values was performed. The analysis shows that for samples processed thus, the ionic conductivity improves when compared with conventionally processed samples sintered in air. Equivalent circuit fitting shows that this improvement in conductivity is mainly due to a drop in the grain boundary resistance. Based on comparison of activation energy values for the conventionally processed vs. reduced-reoxidized samples, this drop can be attributed to a diminished blocking effect of defect-associates at the grain boundaries.https://www.mdpi.com/2304-6740/9/8/63ceriadopant segregationconductivity
collection DOAJ
language English
format Article
sources DOAJ
author Soumitra Sulekar
Mehrad Mehr
Ji Hyun Kim
Juan Claudio Nino
spellingShingle Soumitra Sulekar
Mehrad Mehr
Ji Hyun Kim
Juan Claudio Nino
Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
Inorganics
ceria
dopant segregation
conductivity
author_facet Soumitra Sulekar
Mehrad Mehr
Ji Hyun Kim
Juan Claudio Nino
author_sort Soumitra Sulekar
title Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
title_short Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
title_full Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
title_fullStr Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
title_full_unstemmed Effect of Reduced Atmosphere Sintering on Blocking Grain Boundaries in Rare-Earth Doped Ceria
title_sort effect of reduced atmosphere sintering on blocking grain boundaries in rare-earth doped ceria
publisher MDPI AG
series Inorganics
issn 2304-6740
publishDate 2021-08-01
description Rare-earth doped ceria materials are amongst the top choices for use in electrolytes and composite electrodes in intermediate temperature solid oxide fuel cells. Trivalent acceptor dopants such as gadolinium, which mediate the ionic conductivity in ceria by creating oxygen vacancies, have a tendency to segregate at grain boundaries and triple points. This leads to formation of ionically resistive blocking grain boundaries and necessitates high operating temperatures to overcome this barrier. In an effort to improve the grain boundary conductivity, we studied the effect of a modified sintering cycle, where 10 mol% gadolinia doped ceria was sintered under a reducing atmosphere and subsequently reoxidized. A detailed analysis of the complex impedance, conductivity, and activation energy values was performed. The analysis shows that for samples processed thus, the ionic conductivity improves when compared with conventionally processed samples sintered in air. Equivalent circuit fitting shows that this improvement in conductivity is mainly due to a drop in the grain boundary resistance. Based on comparison of activation energy values for the conventionally processed vs. reduced-reoxidized samples, this drop can be attributed to a diminished blocking effect of defect-associates at the grain boundaries.
topic ceria
dopant segregation
conductivity
url https://www.mdpi.com/2304-6740/9/8/63
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