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Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides

In this study, oxide materials La(1−x)Ca(x)ScO(3−α) (x = 0.03, 0.05 and 0.10) were synthesized by the citric-nitrate combustion method. Single-phase solid solutions were obtained in the case of calcium content x = 0.03 and 0.05, whereas a calcium-enriched impurity phase was found at x = 0.10. Water...

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Autores principales: Lesnichyova, Alyona, Stroeva, Anna, Belyakov, Semyon, Farlenkov, Andrey, Shevyrev, Nikita, Plekhanov, Maksim, Khromushin, Igor, Aksenova, Tatyana, Ananyev, Maxim, Kuzmin, Anton
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6678938/
https://www.ncbi.nlm.nih.gov/pubmed/31295827
http://dx.doi.org/10.3390/ma12142219
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author Lesnichyova, Alyona
Stroeva, Anna
Belyakov, Semyon
Farlenkov, Andrey
Shevyrev, Nikita
Plekhanov, Maksim
Khromushin, Igor
Aksenova, Tatyana
Ananyev, Maxim
Kuzmin, Anton
author_facet Lesnichyova, Alyona
Stroeva, Anna
Belyakov, Semyon
Farlenkov, Andrey
Shevyrev, Nikita
Plekhanov, Maksim
Khromushin, Igor
Aksenova, Tatyana
Ananyev, Maxim
Kuzmin, Anton
author_sort Lesnichyova, Alyona
collection PubMed
description In this study, oxide materials La(1−x)Ca(x)ScO(3−α) (x = 0.03, 0.05 and 0.10) were synthesized by the citric-nitrate combustion method. Single-phase solid solutions were obtained in the case of calcium content x = 0.03 and 0.05, whereas a calcium-enriched impurity phase was found at x = 0.10. Water uptake and release were studied by means of thermogravimetric analysis, thermodesorption spectroscopy and dilatometry. It was shown that lower calcium content in the main phase leads to a decrease in the water uptake. Conductivity was measured by four-probe direct current (DC) and two-probe ascension current (AC) methods at different temperatures, pO(2) and pH(2)O. The effects of phase composition, microstructure and defect structure on electrical conductivity, as well as correlation between conductivity and water uptake experiments, were discussed. The contribution of ionic conductivity of La(1−x)Ca(x)ScO(3−α) rises with decreasing temperature and increasing humidity. The domination of proton conductivity at temperatures below 500 °C under oxidizing and reducing atmospheres is exhibited. Water uptake and release as well as transport properties of La(1−x)Ca(x)ScO(3−α) are compared with the properties of similar proton electrolytes, La(1−x)Sr(x)ScO(3−α), and the possible reasons for their differences were discussed.
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spelling pubmed-66789382019-08-19 Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides Lesnichyova, Alyona Stroeva, Anna Belyakov, Semyon Farlenkov, Andrey Shevyrev, Nikita Plekhanov, Maksim Khromushin, Igor Aksenova, Tatyana Ananyev, Maxim Kuzmin, Anton Materials (Basel) Article In this study, oxide materials La(1−x)Ca(x)ScO(3−α) (x = 0.03, 0.05 and 0.10) were synthesized by the citric-nitrate combustion method. Single-phase solid solutions were obtained in the case of calcium content x = 0.03 and 0.05, whereas a calcium-enriched impurity phase was found at x = 0.10. Water uptake and release were studied by means of thermogravimetric analysis, thermodesorption spectroscopy and dilatometry. It was shown that lower calcium content in the main phase leads to a decrease in the water uptake. Conductivity was measured by four-probe direct current (DC) and two-probe ascension current (AC) methods at different temperatures, pO(2) and pH(2)O. The effects of phase composition, microstructure and defect structure on electrical conductivity, as well as correlation between conductivity and water uptake experiments, were discussed. The contribution of ionic conductivity of La(1−x)Ca(x)ScO(3−α) rises with decreasing temperature and increasing humidity. The domination of proton conductivity at temperatures below 500 °C under oxidizing and reducing atmospheres is exhibited. Water uptake and release as well as transport properties of La(1−x)Ca(x)ScO(3−α) are compared with the properties of similar proton electrolytes, La(1−x)Sr(x)ScO(3−α), and the possible reasons for their differences were discussed. MDPI 2019-07-10 /pmc/articles/PMC6678938/ /pubmed/31295827 http://dx.doi.org/10.3390/ma12142219 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lesnichyova, Alyona
Stroeva, Anna
Belyakov, Semyon
Farlenkov, Andrey
Shevyrev, Nikita
Plekhanov, Maksim
Khromushin, Igor
Aksenova, Tatyana
Ananyev, Maxim
Kuzmin, Anton
Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title_full Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title_fullStr Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title_full_unstemmed Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title_short Water Uptake and Transport Properties of La(1−x)Ca(x)ScO(3−α) Proton-Conducting Oxides
title_sort water uptake and transport properties of la(1−x)ca(x)sco(3−α) proton-conducting oxides
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6678938/
https://www.ncbi.nlm.nih.gov/pubmed/31295827
http://dx.doi.org/10.3390/ma12142219
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