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Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure
The effect of long-term high-temperature annealing on the phase composition, local crystal structure, and oxygen-ion conductivity of SOFC membranes based on zirconium dioxide solid solutions was studied. Crystals with the composition of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (where x = 0.08–...
Autores principales: | , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2023
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10059738/ https://www.ncbi.nlm.nih.gov/pubmed/36984699 http://dx.doi.org/10.3390/membranes13030312 |
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author | Agarkov, Dmitrii Borik, Mikhail Korableva, Galina Kulebyakin, Alexey Kuritsyna, Irina Larina, Nataliya Lomonova, Elena Milovich, Filipp Myzina, Valentina Ryabochkina, Polina Tabachkova, Nataliya Volkova, Tatyana Zakharov, Denis |
author_facet | Agarkov, Dmitrii Borik, Mikhail Korableva, Galina Kulebyakin, Alexey Kuritsyna, Irina Larina, Nataliya Lomonova, Elena Milovich, Filipp Myzina, Valentina Ryabochkina, Polina Tabachkova, Nataliya Volkova, Tatyana Zakharov, Denis |
author_sort | Agarkov, Dmitrii |
collection | PubMed |
description | The effect of long-term high-temperature annealing on the phase composition, local crystal structure, and oxygen-ion conductivity of SOFC membranes based on zirconium dioxide solid solutions was studied. Crystals with the composition of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (where x = 0.08–0.1; R-Yb, Y, Tb, Gd) were obtained by the method of directed melt crystallization in a cold crucible. The crystals were annealed in air at a temperature of 1000 °C for 400 h. The phase analysis of the crystals before and after annealing was studied by X-ray diffractometry and Raman spectroscopy. The study of the ionic conductivity of the crystals was carried out by the method of impedance spectroscopy in the temperature range 400–900 °C. It has been shown that when various rare earth cations (Yb, Y, Tb, and Gd) are used, the maximum conductivity is observed for the compositions (ZrO(2))(0.91)(Sc(2)O(3))(0.08)(Yb(2)O(3))(0.01), (ZrO(2))(0.89)(Sc(2)O(3))(0.1)(Y(2)O(3))(0.01), (ZrO(2))(0.90)(Sc(2)O(3))(0.09)(Tb(2)O(3))(0.01), and (ZrO(2))(0.89)(Sc(2)O(3))(0.1)(Gd(2)O(3))(0.01). At the same time, these crystals have a highly symmetrical pseudocubic structure, which is retained even after crystal annealing. At comparable concentrations of Sc(2)O(3), the conductivity of crystals decreases with an increase in the ionic radius of the rare earth cation. The high-temperature degradation of the conductivity is also discussed depending on the type of rare earth oxide and the concentration of scandium oxide. |
format | Online Article Text |
id | pubmed-10059738 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-100597382023-03-30 Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure Agarkov, Dmitrii Borik, Mikhail Korableva, Galina Kulebyakin, Alexey Kuritsyna, Irina Larina, Nataliya Lomonova, Elena Milovich, Filipp Myzina, Valentina Ryabochkina, Polina Tabachkova, Nataliya Volkova, Tatyana Zakharov, Denis Membranes (Basel) Article The effect of long-term high-temperature annealing on the phase composition, local crystal structure, and oxygen-ion conductivity of SOFC membranes based on zirconium dioxide solid solutions was studied. Crystals with the composition of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (where x = 0.08–0.1; R-Yb, Y, Tb, Gd) were obtained by the method of directed melt crystallization in a cold crucible. The crystals were annealed in air at a temperature of 1000 °C for 400 h. The phase analysis of the crystals before and after annealing was studied by X-ray diffractometry and Raman spectroscopy. The study of the ionic conductivity of the crystals was carried out by the method of impedance spectroscopy in the temperature range 400–900 °C. It has been shown that when various rare earth cations (Yb, Y, Tb, and Gd) are used, the maximum conductivity is observed for the compositions (ZrO(2))(0.91)(Sc(2)O(3))(0.08)(Yb(2)O(3))(0.01), (ZrO(2))(0.89)(Sc(2)O(3))(0.1)(Y(2)O(3))(0.01), (ZrO(2))(0.90)(Sc(2)O(3))(0.09)(Tb(2)O(3))(0.01), and (ZrO(2))(0.89)(Sc(2)O(3))(0.1)(Gd(2)O(3))(0.01). At the same time, these crystals have a highly symmetrical pseudocubic structure, which is retained even after crystal annealing. At comparable concentrations of Sc(2)O(3), the conductivity of crystals decreases with an increase in the ionic radius of the rare earth cation. The high-temperature degradation of the conductivity is also discussed depending on the type of rare earth oxide and the concentration of scandium oxide. MDPI 2023-03-09 /pmc/articles/PMC10059738/ /pubmed/36984699 http://dx.doi.org/10.3390/membranes13030312 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Agarkov, Dmitrii Borik, Mikhail Korableva, Galina Kulebyakin, Alexey Kuritsyna, Irina Larina, Nataliya Lomonova, Elena Milovich, Filipp Myzina, Valentina Ryabochkina, Polina Tabachkova, Nataliya Volkova, Tatyana Zakharov, Denis Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title | Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title_full | Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title_fullStr | Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title_full_unstemmed | Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title_short | Stability of the Structural and Transport Characteristics of (ZrO(2))(0.99−x)(Sc(2)O(3))(x)(R(2)O(3))(0.01) (R–Yb, Y, Tb, Gd) Electrolytic Membranes to High-Temperature Exposure |
title_sort | stability of the structural and transport characteristics of (zro(2))(0.99−x)(sc(2)o(3))(x)(r(2)o(3))(0.01) (r–yb, y, tb, gd) electrolytic membranes to high-temperature exposure |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10059738/ https://www.ncbi.nlm.nih.gov/pubmed/36984699 http://dx.doi.org/10.3390/membranes13030312 |
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