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Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic

In this work, Zn co-doped tungsten bronze having nominal formula Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) has been synthesized and systematically studied for structure, dielectric and electrical properties. The formation of the phase of tetragonal tungsten bronze with space group P4bm and the occurrence of...

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Autores principales: Bendahhou, Amine, Chourti, Karim, El Bouayadi, Rachid, El Barkany, Soufian, Abou-Salama, Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055657/
https://www.ncbi.nlm.nih.gov/pubmed/35519146
http://dx.doi.org/10.1039/d0ra05163b
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author Bendahhou, Amine
Chourti, Karim
El Bouayadi, Rachid
El Barkany, Soufian
Abou-Salama, Mohamed
author_facet Bendahhou, Amine
Chourti, Karim
El Bouayadi, Rachid
El Barkany, Soufian
Abou-Salama, Mohamed
author_sort Bendahhou, Amine
collection PubMed
description In this work, Zn co-doped tungsten bronze having nominal formula Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) has been synthesized and systematically studied for structure, dielectric and electrical properties. The formation of the phase of tetragonal tungsten bronze with space group P4bm and the occurrence of oxygen vacancies were verified by the Rietveld refinement using X-ray diffraction data. Scanning electron microscopy (SEM) of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic shows high densification, low porosity, and homogeneous distribution of grains of different sizes over the total surface. The sample shows a dielectric anomaly of ferroelectric paraelectric type at 262 °C, and has non-relaxor type of diffuse phase transition. The electrical property (complex impedance Z*, complex permittivity ε*, complex modulus M*) of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic has been investigated by non-destructive complex impedance spectroscopy (CIS) as a function of frequency at different temperatures. Grains and grain boundaries conduction is detected from a complex impedance spectrum by fitting the Nyquist plot with an appropriate electrical circuit. The Nyquist plot indicates the negative temperature coefficient of resistance (NTCR) character of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic. The variation of AC conductivity as a function of frequency reveals that the compound has an Arrhenius-type behavior of electrical conductivity. The DC electrical conductivities of grains and grain boundaries have been studied. The presence of non-Debye relaxations was verified by a complex modulus analysis.
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spelling pubmed-90556572022-05-04 Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic Bendahhou, Amine Chourti, Karim El Bouayadi, Rachid El Barkany, Soufian Abou-Salama, Mohamed RSC Adv Chemistry In this work, Zn co-doped tungsten bronze having nominal formula Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) has been synthesized and systematically studied for structure, dielectric and electrical properties. The formation of the phase of tetragonal tungsten bronze with space group P4bm and the occurrence of oxygen vacancies were verified by the Rietveld refinement using X-ray diffraction data. Scanning electron microscopy (SEM) of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic shows high densification, low porosity, and homogeneous distribution of grains of different sizes over the total surface. The sample shows a dielectric anomaly of ferroelectric paraelectric type at 262 °C, and has non-relaxor type of diffuse phase transition. The electrical property (complex impedance Z*, complex permittivity ε*, complex modulus M*) of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic has been investigated by non-destructive complex impedance spectroscopy (CIS) as a function of frequency at different temperatures. Grains and grain boundaries conduction is detected from a complex impedance spectrum by fitting the Nyquist plot with an appropriate electrical circuit. The Nyquist plot indicates the negative temperature coefficient of resistance (NTCR) character of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ceramic. The variation of AC conductivity as a function of frequency reveals that the compound has an Arrhenius-type behavior of electrical conductivity. The DC electrical conductivities of grains and grain boundaries have been studied. The presence of non-Debye relaxations was verified by a complex modulus analysis. The Royal Society of Chemistry 2020-07-28 /pmc/articles/PMC9055657/ /pubmed/35519146 http://dx.doi.org/10.1039/d0ra05163b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Bendahhou, Amine
Chourti, Karim
El Bouayadi, Rachid
El Barkany, Soufian
Abou-Salama, Mohamed
Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title_full Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title_fullStr Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title_full_unstemmed Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title_short Structural, dielectric and impedance spectroscopy analysis of Ba(5)CaTi(1.94)Zn(0.06)Nb(8)O(30) ferroelectric ceramic
title_sort structural, dielectric and impedance spectroscopy analysis of ba(5)cati(1.94)zn(0.06)nb(8)o(30) ferroelectric ceramic
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055657/
https://www.ncbi.nlm.nih.gov/pubmed/35519146
http://dx.doi.org/10.1039/d0ra05163b
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