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Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell

Comparative studies were performed on variations in the ABO(3) perovskite structure, chemical stability in a CO(2)-H(2) gas atmosphere, and electrical conductivity measurements in air, hydrogen, and humidity-involving gas atmospheres of monophase orthorhombic Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) samples,...

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Autores principales: Dudek, Magdalena, Lis, Bartłomiej, Lach, Radosław, Daugėla, Salius, Šalkus, Tomas, Kežionis, Algimantas, Mosiałek, Michał, Sitarz, Maciej, Rapacz-Kmita, Alicja, Grzywacz, Przemysław
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7216117/
https://www.ncbi.nlm.nih.gov/pubmed/32316311
http://dx.doi.org/10.3390/ma13081874
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author Dudek, Magdalena
Lis, Bartłomiej
Lach, Radosław
Daugėla, Salius
Šalkus, Tomas
Kežionis, Algimantas
Mosiałek, Michał
Sitarz, Maciej
Rapacz-Kmita, Alicja
Grzywacz, Przemysław
author_facet Dudek, Magdalena
Lis, Bartłomiej
Lach, Radosław
Daugėla, Salius
Šalkus, Tomas
Kežionis, Algimantas
Mosiałek, Michał
Sitarz, Maciej
Rapacz-Kmita, Alicja
Grzywacz, Przemysław
author_sort Dudek, Magdalena
collection PubMed
description Comparative studies were performed on variations in the ABO(3) perovskite structure, chemical stability in a CO(2)-H(2) gas atmosphere, and electrical conductivity measurements in air, hydrogen, and humidity-involving gas atmospheres of monophase orthorhombic Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) samples, where 0 < x < 0.1. The substitution of strontium with barium resulting in Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) led to an increase in the specific free volume and global instability index when compared to BaCe(0.9)Y(0.1)O(3−δ). Reductions in the tolerance factor and cell volume were found with increases in the value of x in Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ). Based on the thermogravimetric studies performed for Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), where 0 < x < 0.1, it was found that modified samples of this type exhibited superior chemical resistance in a CO(2) gas atmosphere when compared to BaCe(0.9)Y(0.1)O(3−δ). The application of broadband impedance spectroscopy enabled the determination of the bulk and grain boundary conductivity of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) samples within the temperature range 25–730 °C. It was found that Ba(0.98)Sr(0.02)Ce(0.9)Y(0.1)O(3−δ) exhibited a slightly higher grain interior and grain boundary conductivity when compared to BaCe(0.9)Y(0.1)O(3−δ). The Ba(0.95)Sr(0.05)Ce(0.9)Y(0.1)O(3−δ) sample also exhibited improved electrical conductivity in hydrogen gas atmospheres or atmospheres involving humidity. The greater chemical resistance of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), where x = 0.02 or 0.05, in a CO(2) gas atmosphere is desirable for application in proton ceramic fuel cells supplied by rich hydrogen processing gases.
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spelling pubmed-72161172020-05-22 Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell Dudek, Magdalena Lis, Bartłomiej Lach, Radosław Daugėla, Salius Šalkus, Tomas Kežionis, Algimantas Mosiałek, Michał Sitarz, Maciej Rapacz-Kmita, Alicja Grzywacz, Przemysław Materials (Basel) Article Comparative studies were performed on variations in the ABO(3) perovskite structure, chemical stability in a CO(2)-H(2) gas atmosphere, and electrical conductivity measurements in air, hydrogen, and humidity-involving gas atmospheres of monophase orthorhombic Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) samples, where 0 < x < 0.1. The substitution of strontium with barium resulting in Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) led to an increase in the specific free volume and global instability index when compared to BaCe(0.9)Y(0.1)O(3−δ). Reductions in the tolerance factor and cell volume were found with increases in the value of x in Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ). Based on the thermogravimetric studies performed for Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), where 0 < x < 0.1, it was found that modified samples of this type exhibited superior chemical resistance in a CO(2) gas atmosphere when compared to BaCe(0.9)Y(0.1)O(3−δ). The application of broadband impedance spectroscopy enabled the determination of the bulk and grain boundary conductivity of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ) samples within the temperature range 25–730 °C. It was found that Ba(0.98)Sr(0.02)Ce(0.9)Y(0.1)O(3−δ) exhibited a slightly higher grain interior and grain boundary conductivity when compared to BaCe(0.9)Y(0.1)O(3−δ). The Ba(0.95)Sr(0.05)Ce(0.9)Y(0.1)O(3−δ) sample also exhibited improved electrical conductivity in hydrogen gas atmospheres or atmospheres involving humidity. The greater chemical resistance of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), where x = 0.02 or 0.05, in a CO(2) gas atmosphere is desirable for application in proton ceramic fuel cells supplied by rich hydrogen processing gases. MDPI 2020-04-16 /pmc/articles/PMC7216117/ /pubmed/32316311 http://dx.doi.org/10.3390/ma13081874 Text en © 2020 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
Dudek, Magdalena
Lis, Bartłomiej
Lach, Radosław
Daugėla, Salius
Šalkus, Tomas
Kežionis, Algimantas
Mosiałek, Michał
Sitarz, Maciej
Rapacz-Kmita, Alicja
Grzywacz, Przemysław
Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title_full Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title_fullStr Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title_full_unstemmed Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title_short Samples of Ba(1−x)Sr(x)Ce(0.9)Y(0.1)O(3−δ), 0 < x < 0.1, with Improved Chemical Stability in CO(2)-H(2) Gas-Involving Atmospheres as Potential Electrolytes for a Proton Ceramic Fuel Cell
title_sort samples of ba(1−x)sr(x)ce(0.9)y(0.1)o(3−δ), 0 < x < 0.1, with improved chemical stability in co(2)-h(2) gas-involving atmospheres as potential electrolytes for a proton ceramic fuel cell
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7216117/
https://www.ncbi.nlm.nih.gov/pubmed/32316311
http://dx.doi.org/10.3390/ma13081874
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