Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics
Temperature-dependent ferroelectric behavior in Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 (BCT-BZT-Fe) (x = 0%, 0.5%, 1%) has been investigated. Olsen cycle is used to estimate the thermal energy conversion potential in the compositions under study. The maximum energy conversion density of 305 kJ/m3 per cycle i...
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doaj-c52581dece6e4bad96eb57bd2ee78b432021-05-02T09:08:37ZengTaylor & Francis GroupJournal of Asian Ceramic Societies2187-07642016-03-014110211110.1016/j.jascer.2015.12.005Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramicsDeepakshi Sharma0Satyanarayan Patel1Anupinder Singh2Rahul Vaish3Department of Physics, Guru Nanak Dev University, Amritsar 143005, Punjab, IndiaSchool of Engineering, Indian Institute of Technology Mandi, 175 001, Himachal Pradesh, IndiaDepartment of Physics, Guru Nanak Dev University, Amritsar 143005, Punjab, IndiaSchool of Engineering, Indian Institute of Technology Mandi, 175 001, Himachal Pradesh, IndiaTemperature-dependent ferroelectric behavior in Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 (BCT-BZT-Fe) (x = 0%, 0.5%, 1%) has been investigated. Olsen cycle is used to estimate the thermal energy conversion potential in the compositions under study. The maximum energy conversion density of 305 kJ/m3 per cycle is obtained for BCT-BZT-Fe (0.5% Fe content) when the cycle is operated between 30 and 110 °C and an electric field of 0–3 MV/m. The obtained energy density is very high for small electric field and temperature gradient as compared to other lead-free ferroelectric materials. A comparison table of previously reported Olsen cycle-based energy conversion in bulk ferroelectric ceramics is presented. Temperature also affects the hysteresis parameters, therefore, scaling relations for coercive field (Ec) and remnant polarization (Pr) as a function of temperature (T) were also observed. The power-law exponents are obtained for all hysteresis parameters in the compositions under study. The scaling relations are found as Ec ∝ T−0.658, Ec ∝ T−0.687 and Ec ∝ T−0.717 for 0%, 0.5% and 1% Fe, respectively. Similarly, Pr ∝ T−1.59, Pr ∝ T−1.65 and Pr ∝ T−1.85 are for 0%, 0.5% and 1% Fe, respectively. Additionally, back-switching polarization (Pbc) behavior as a function of temperature is estimated by well-described Arrhenius law to evaluate the average activation energy for all the compositions.http://www.sciencedirect.com/science/article/pii/S2187076415300105Energy conversionOlsen cycleDynamic hysteresis scalingFerroelectric |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Deepakshi Sharma Satyanarayan Patel Anupinder Singh Rahul Vaish |
spellingShingle |
Deepakshi Sharma Satyanarayan Patel Anupinder Singh Rahul Vaish Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics Journal of Asian Ceramic Societies Energy conversion Olsen cycle Dynamic hysteresis scaling Ferroelectric |
author_facet |
Deepakshi Sharma Satyanarayan Patel Anupinder Singh Rahul Vaish |
author_sort |
Deepakshi Sharma |
title |
Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics |
title_short |
Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics |
title_full |
Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics |
title_fullStr |
Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics |
title_full_unstemmed |
Thermal energy conversion and temperature-dependent dynamic hysteresis analysis for Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 ceramics |
title_sort |
thermal energy conversion and temperature-dependent dynamic hysteresis analysis for ba0.85ca0.15ti0.9−xfexzr0.1o3 ceramics |
publisher |
Taylor & Francis Group |
series |
Journal of Asian Ceramic Societies |
issn |
2187-0764 |
publishDate |
2016-03-01 |
description |
Temperature-dependent ferroelectric behavior in Ba0.85Ca0.15Ti0.9−xFexZr0.1O3 (BCT-BZT-Fe) (x = 0%, 0.5%, 1%) has been investigated. Olsen cycle is used to estimate the thermal energy conversion potential in the compositions under study. The maximum energy conversion density of 305 kJ/m3 per cycle is obtained for BCT-BZT-Fe (0.5% Fe content) when the cycle is operated between 30 and 110 °C and an electric field of 0–3 MV/m. The obtained energy density is very high for small electric field and temperature gradient as compared to other lead-free ferroelectric materials. A comparison table of previously reported Olsen cycle-based energy conversion in bulk ferroelectric ceramics is presented. Temperature also affects the hysteresis parameters, therefore, scaling relations for coercive field (Ec) and remnant polarization (Pr) as a function of temperature (T) were also observed. The power-law exponents are obtained for all hysteresis parameters in the compositions under study. The scaling relations are found as Ec ∝ T−0.658, Ec ∝ T−0.687 and Ec ∝ T−0.717 for 0%, 0.5% and 1% Fe, respectively. Similarly, Pr ∝ T−1.59, Pr ∝ T−1.65 and Pr ∝ T−1.85 are for 0%, 0.5% and 1% Fe, respectively. Additionally, back-switching polarization (Pbc) behavior as a function of temperature is estimated by well-described Arrhenius law to evaluate the average activation energy for all the compositions. |
topic |
Energy conversion Olsen cycle Dynamic hysteresis scaling Ferroelectric |
url |
http://www.sciencedirect.com/science/article/pii/S2187076415300105 |
work_keys_str_mv |
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1721493507523215360 |