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Optimized microstructure and enhanced breakdown strength in Ca1−xSrxTiO3 solid solutions

Authors :
Hua Hao
Zhonghua Yao
Lin Zhang
Minghe Cao
H. X. Liu
Source :
2015 Joint IEEE International Symposium on the Applications of Ferroelectric (ISAF), International Symposium on Integrated Functionalities (ISIF), and Piezoelectric Force Microscopy Workshop (PFM).
Publication Year :
2015
Publisher :
IEEE, 2015.

Abstract

Linear dielectric materials are ideal options for energy storage application due to the typical high energy storage efficiency and breakdown strength. In the present work, linear dielectric system Ca 1−x Sr x TiO 3 (x=0∼0.6) was synthesized through conventional solid state reaction method. All the samples were sintered at 1400oC and had dense and pore-free microstructures. The effects of Sr substitution on the phase transition, microstructure and ferroelectric properties were systematically investigated. Slow scanning X-ray diffraction showed that crossover region between orthorhombic phase (Pbnm) and tetragonal phase (I4/mcm) at about x=0.30–0.50 has been obtained. SEM revealed the Ca 0.6 Sr 0.4 TiO 3 ceramics exhibit the most homogeneous microstructure with fine grains. The breakdown strengths were found to be enhanced near the phase transition composition due to the optimized microstructure, Ca 0.6 Sr 0.4 TiO 3 showed the highest breakdown strength, which reached 26 kV/mm at room temperature. Additionally, HfO 2 , with a high band energy, was selected as additive into the Ca 0.6 Sr 0.4 TiO 3 system to mitigate the high-temperature and high-field loss, so that to improve the stability of energy storage efficiency under elevated temperature and electric field.

Details

Database :
OpenAIRE
Journal :
2015 Joint IEEE International Symposium on the Applications of Ferroelectric (ISAF), International Symposium on Integrated Functionalities (ISIF), and Piezoelectric Force Microscopy Workshop (PFM)
Accession number :
edsair.doi...........de84a8432015595168b819388c092e66
Full Text :
https://doi.org/10.1109/isaf.2015.7172673