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Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)

Ferroelectric ceramic materials based on the (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3) system (x = 0.05–0.65, y = 0.025–0.30, Δx = 0.05) were obtained by a two-stage solid-phase synthesis followed by sintering using conventional ceramic technology. It was found that the region of pure solid solutions...

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Autores principales: Andryushin, Konstantin, Shilkina, Lidiya, Andryushina, Inna, Nagaenko, Alexandr, Moysa, Maxim, Dudkina, Svetlana, Reznichenko, Larisa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8304939/
https://www.ncbi.nlm.nih.gov/pubmed/34300928
http://dx.doi.org/10.3390/ma14144009
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author Andryushin, Konstantin
Shilkina, Lidiya
Andryushina, Inna
Nagaenko, Alexandr
Moysa, Maxim
Dudkina, Svetlana
Reznichenko, Larisa
author_facet Andryushin, Konstantin
Shilkina, Lidiya
Andryushina, Inna
Nagaenko, Alexandr
Moysa, Maxim
Dudkina, Svetlana
Reznichenko, Larisa
author_sort Andryushin, Konstantin
collection PubMed
description Ferroelectric ceramic materials based on the (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3) system (x = 0.05–0.65, y = 0.025–0.30, Δx = 0.05) were obtained by a two-stage solid-phase synthesis followed by sintering using conventional ceramic technology. It was found that the region of pure solid solutions extends to x = 0.70 at y = 0.05 and, with increasing y, it narrows down to x ≤ 0.10 at y = 0.25. Going out beyond the specified concentrations leads to the formation of a heterogeneous region. It is shown that the grain landscape of all studied ceramics is formed during recrystallization sintering in the presence of a liquid phase, the source of which is unreacted components (Na(2)CO(3) with T(melt.) = 1126 K, K(2)CO(3) with T(melt.) = 1164 K, KOH with T(melt.) = 677 K) and low-melting eutectics in niobate mixtures (NaNbO(3), T(melt). = 1260 K, KNbO(3), T(melt.) = 1118 K). A study of the electrophysical properties at room temperature showed the nonmonotonic behavior of all dependences with extrema near symmetry transitions, which corresponds to the logic of changes in the electrophysical parameters in systems with morphotropic phase boundaries. An analysis of the evolution of dielectric spectra made it possible to distinguish three groups of solid solutions: classical ferroelectrics (y = 0.05–0.10), ferroelectrics with a diffuse phase transition (y = 0.30), and ferroelectrics relaxors (y = 0.15–0.25). A conclusion about the expediency of using the obtained data in the development of materials and devices based on such materials has been made.
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spelling pubmed-83049392021-07-25 Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3) Andryushin, Konstantin Shilkina, Lidiya Andryushina, Inna Nagaenko, Alexandr Moysa, Maxim Dudkina, Svetlana Reznichenko, Larisa Materials (Basel) Article Ferroelectric ceramic materials based on the (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3) system (x = 0.05–0.65, y = 0.025–0.30, Δx = 0.05) were obtained by a two-stage solid-phase synthesis followed by sintering using conventional ceramic technology. It was found that the region of pure solid solutions extends to x = 0.70 at y = 0.05 and, with increasing y, it narrows down to x ≤ 0.10 at y = 0.25. Going out beyond the specified concentrations leads to the formation of a heterogeneous region. It is shown that the grain landscape of all studied ceramics is formed during recrystallization sintering in the presence of a liquid phase, the source of which is unreacted components (Na(2)CO(3) with T(melt.) = 1126 K, K(2)CO(3) with T(melt.) = 1164 K, KOH with T(melt.) = 677 K) and low-melting eutectics in niobate mixtures (NaNbO(3), T(melt). = 1260 K, KNbO(3), T(melt.) = 1118 K). A study of the electrophysical properties at room temperature showed the nonmonotonic behavior of all dependences with extrema near symmetry transitions, which corresponds to the logic of changes in the electrophysical parameters in systems with morphotropic phase boundaries. An analysis of the evolution of dielectric spectra made it possible to distinguish three groups of solid solutions: classical ferroelectrics (y = 0.05–0.10), ferroelectrics with a diffuse phase transition (y = 0.30), and ferroelectrics relaxors (y = 0.15–0.25). A conclusion about the expediency of using the obtained data in the development of materials and devices based on such materials has been made. MDPI 2021-07-17 /pmc/articles/PMC8304939/ /pubmed/34300928 http://dx.doi.org/10.3390/ma14144009 Text en © 2021 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
Andryushin, Konstantin
Shilkina, Lidiya
Andryushina, Inna
Nagaenko, Alexandr
Moysa, Maxim
Dudkina, Svetlana
Reznichenko, Larisa
Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title_full Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title_fullStr Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title_full_unstemmed Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title_short Features of the Structure and Electrophysical Properties of Solid Solutions of the System (1-x-y) NaNbO(3)-xKNbO(3)-yCd(0.5)NbO(3)
title_sort features of the structure and electrophysical properties of solid solutions of the system (1-x-y) nanbo(3)-xknbo(3)-ycd(0.5)nbo(3)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8304939/
https://www.ncbi.nlm.nih.gov/pubmed/34300928
http://dx.doi.org/10.3390/ma14144009
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