Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic

Lead-free piezoelectric perovskite ceramic (Bi0.5Na0.5)0.95Ba0.05TiO3 (BNT-BT0.05), prepared by conventional high temperature solid state reaction technique at 1160 °C/3h in air atmosphere, is investigated by impedance and modulus spectroscopy in a temperature range 35–400 °C, over a frequency range...

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Main Authors: Ansu K. Roy, Kamal Prasad, Ashutosh Prasad
Format: Article
Language:English
Published: University of Novi Sad 2013-06-01
Series:Processing and Application of Ceramics
Subjects:
Online Access:http://www.tf.uns.ac.rs/publikacije/PAC/pdf/PAC%2020%2005.pdf
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spelling doaj-8b31adbd6e6f40cdaaf82f5122e58e9b2020-11-25T02:39:31ZengUniversity of Novi SadProcessing and Application of Ceramics1820-61312013-06-0172819110.2298/PAC1302081RPiezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramicAnsu K. RoyKamal PrasadAshutosh PrasadLead-free piezoelectric perovskite ceramic (Bi0.5Na0.5)0.95Ba0.05TiO3 (BNT-BT0.05), prepared by conventional high temperature solid state reaction technique at 1160 °C/3h in air atmosphere, is investigated by impedance and modulus spectroscopy in a temperature range 35–400 °C, over a frequency range 100 Hz–1 MHz. The crystal structure, microstructure, and piezoelectric properties as well as the AC conductivity of the sample were studied. Powder X-ray diffraction pattern derived from the resulting data at the room temperature subjected to Rietveld refinements and Williamson-Hall plot analysis confirmed the formation of phase pure compound with monoclinic unit cells having a crystallite-size ~33.8 nm. Observed SEM micrograph showed a uniform distribution of grains inside the sample having an average grain size ~3 mm. Longitudinal piezoelectric charge coefficient of the sample poled under a DC electric field of ~ 2.5 kV/mm at 80 °C in a silicone oil bath was found to be equal to 95 pC/N. The frequency and temperature dependent electrical data analysed in the framework of AC conductivity, complex impedance as well as electric modulus formalisms showed negative temperature coefficient of resistance (NTCR) character of the material and the dielectric relaxation in the material to be of non-Debye type. Double power law for the frequency-dependence of AC conductivity and Jump Relaxation Model (JRM) were found to explain successfully the mechanism of charge transport in BNT-BT0.05.http://www.tf.uns.ac.rs/publikacije/PAC/pdf/PAC%2020%2005.pdf(Bi0.5Na0.5 )0.95 Ba0.05TiO3morphotropic phase boundaryelectrical propertiespiezoelectric properties
collection DOAJ
language English
format Article
sources DOAJ
author Ansu K. Roy
Kamal Prasad
Ashutosh Prasad
spellingShingle Ansu K. Roy
Kamal Prasad
Ashutosh Prasad
Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
Processing and Application of Ceramics
(Bi0.5Na0.5 )0.95 Ba0.05TiO3
morphotropic phase boundary
electrical properties
piezoelectric properties
author_facet Ansu K. Roy
Kamal Prasad
Ashutosh Prasad
author_sort Ansu K. Roy
title Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
title_short Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
title_full Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
title_fullStr Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
title_full_unstemmed Piezoelectric, impedance, electric modulus and AC conductivity studies on (Bi0.5Na0.5)0.95Ba0.05TiO3 ceramic
title_sort piezoelectric, impedance, electric modulus and ac conductivity studies on (bi0.5na0.5)0.95ba0.05tio3 ceramic
publisher University of Novi Sad
series Processing and Application of Ceramics
issn 1820-6131
publishDate 2013-06-01
description Lead-free piezoelectric perovskite ceramic (Bi0.5Na0.5)0.95Ba0.05TiO3 (BNT-BT0.05), prepared by conventional high temperature solid state reaction technique at 1160 °C/3h in air atmosphere, is investigated by impedance and modulus spectroscopy in a temperature range 35–400 °C, over a frequency range 100 Hz–1 MHz. The crystal structure, microstructure, and piezoelectric properties as well as the AC conductivity of the sample were studied. Powder X-ray diffraction pattern derived from the resulting data at the room temperature subjected to Rietveld refinements and Williamson-Hall plot analysis confirmed the formation of phase pure compound with monoclinic unit cells having a crystallite-size ~33.8 nm. Observed SEM micrograph showed a uniform distribution of grains inside the sample having an average grain size ~3 mm. Longitudinal piezoelectric charge coefficient of the sample poled under a DC electric field of ~ 2.5 kV/mm at 80 °C in a silicone oil bath was found to be equal to 95 pC/N. The frequency and temperature dependent electrical data analysed in the framework of AC conductivity, complex impedance as well as electric modulus formalisms showed negative temperature coefficient of resistance (NTCR) character of the material and the dielectric relaxation in the material to be of non-Debye type. Double power law for the frequency-dependence of AC conductivity and Jump Relaxation Model (JRM) were found to explain successfully the mechanism of charge transport in BNT-BT0.05.
topic (Bi0.5Na0.5 )0.95 Ba0.05TiO3
morphotropic phase boundary
electrical properties
piezoelectric properties
url http://www.tf.uns.ac.rs/publikacije/PAC/pdf/PAC%2020%2005.pdf
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AT ashutoshprasad piezoelectricimpedanceelectricmodulusandacconductivitystudiesonbi05na05095ba005tio3ceramic
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