Cargando…

Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)

Ceramics of binary systems solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7) with non-isostructural extreme components were prepared by the solid-phase reactions technique with the following sintering using conventional ceramic technology. It was found that cera...

Descripción completa

Detalles Bibliográficos
Autores principales: Zubarev, J.Y., Chang, S.-H., Lin, C., Boldyrev, N.A., Pavlenko, A.V., Nazarenko, A.V., Nagaenko, A.V., Yurasov, Y.I., Verbenko, I.A., Parinov, I.A., Reznichenko, L.A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7610225/
https://www.ncbi.nlm.nih.gov/pubmed/33163640
http://dx.doi.org/10.1016/j.heliyon.2020.e05197
_version_ 1783605156686856192
author Zubarev, J.Y.
Chang, S.-H.
Lin, C.
Boldyrev, N.A.
Pavlenko, A.V.
Nazarenko, A.V.
Nagaenko, A.V.
Yurasov, Y.I.
Verbenko, I.A.
Parinov, I.A.
Reznichenko, L.A.
author_facet Zubarev, J.Y.
Chang, S.-H.
Lin, C.
Boldyrev, N.A.
Pavlenko, A.V.
Nazarenko, A.V.
Nagaenko, A.V.
Yurasov, Y.I.
Verbenko, I.A.
Parinov, I.A.
Reznichenko, L.A.
author_sort Zubarev, J.Y.
collection PubMed
description Ceramics of binary systems solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7) with non-isostructural extreme components were prepared by the solid-phase reactions technique with the following sintering using conventional ceramic technology. It was found that ceramics with x ≤ 0.2 have a perovskite structure. Layered type of structure predominates in the concentration range 0.2 < x ≤ 1. Phase diagrams of both systems at room temperature have been determined in the perovskite area. It was shown that this area contains two concentration regions with the different crystal structures and the morphotropic phase boundary between them. Microstructure and dielectric characteristics of selected solid solutions were investigated. The influence of technological regulations, such as mechanical activation and variation of sintering temperatures, on the formation of the microstructure and dielectric characteristics was studied for the individually selected concentrations (x = 0.1 and x = 0.25). Dielectric characteristics of ceramics revealed the presence of the Maxwell-Wagner polarization and its corresponding relaxation in the solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) at x > 0.20.
format Online
Article
Text
id pubmed-7610225
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-76102252020-11-06 Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7) Zubarev, J.Y. Chang, S.-H. Lin, C. Boldyrev, N.A. Pavlenko, A.V. Nazarenko, A.V. Nagaenko, A.V. Yurasov, Y.I. Verbenko, I.A. Parinov, I.A. Reznichenko, L.A. Heliyon Research Article Ceramics of binary systems solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7) with non-isostructural extreme components were prepared by the solid-phase reactions technique with the following sintering using conventional ceramic technology. It was found that ceramics with x ≤ 0.2 have a perovskite structure. Layered type of structure predominates in the concentration range 0.2 < x ≤ 1. Phase diagrams of both systems at room temperature have been determined in the perovskite area. It was shown that this area contains two concentration regions with the different crystal structures and the morphotropic phase boundary between them. Microstructure and dielectric characteristics of selected solid solutions were investigated. The influence of technological regulations, such as mechanical activation and variation of sintering temperatures, on the formation of the microstructure and dielectric characteristics was studied for the individually selected concentrations (x = 0.1 and x = 0.25). Dielectric characteristics of ceramics revealed the presence of the Maxwell-Wagner polarization and its corresponding relaxation in the solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) at x > 0.20. Elsevier 2020-10-24 /pmc/articles/PMC7610225/ /pubmed/33163640 http://dx.doi.org/10.1016/j.heliyon.2020.e05197 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Zubarev, J.Y.
Chang, S.-H.
Lin, C.
Boldyrev, N.A.
Pavlenko, A.V.
Nazarenko, A.V.
Nagaenko, A.V.
Yurasov, Y.I.
Verbenko, I.A.
Parinov, I.A.
Reznichenko, L.A.
Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title_full Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title_fullStr Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title_full_unstemmed Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title_short Phase states, microstructure and dielectric characteristics of solid solutions (1 – x)NaNbO(3) – xCa(2)Nb(2)O(7) and (1 – x)NaNbO(3) – xSr(2)Nb(2)O(7)
title_sort phase states, microstructure and dielectric characteristics of solid solutions (1 – x)nanbo(3) – xca(2)nb(2)o(7) and (1 – x)nanbo(3) – xsr(2)nb(2)o(7)
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7610225/
https://www.ncbi.nlm.nih.gov/pubmed/33163640
http://dx.doi.org/10.1016/j.heliyon.2020.e05197
work_keys_str_mv AT zubarevjy phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT changsh phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT linc phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT boldyrevna phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT pavlenkoav phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT nazarenkoav phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT nagaenkoav phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT yurasovyi phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT verbenkoia phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT parinovia phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7
AT reznichenkola phasestatesmicrostructureanddielectriccharacteristicsofsolidsolutions1xnanbo3xca2nb2o7and1xnanbo3xsr2nb2o7