The effect of grain boundary on the energy storage properties of (Ba sub(0.4)Sr sub(0.6M))TiO sub(3) paraelectric ceramics by varying grain sizes

Abstract-(Ba sub(0.4)Sr sub(0.6))TiO sub(3) (BST) ceramics with various grain sizes (0.3-3.4 mu m) were synthesized by the oxalate coprecipitation method and prepared by plasma activated sintering and conventional solid-state sintering process. The effect of grain boundary on the energy storage prop...

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Veröffentlicht in:IEEE transactions on ultrasonics, ferroelectrics, and frequency control ferroelectrics, and frequency control, 2015-04, Vol.62 (4), p.609-616
Hauptverfasser: Song, Zhe, Liu, Hanxing, Hao, Hua, Zhang, Shujun, Cao, Minghe, Yao, Zhonghua, Wang, Zhijian, Hu, Wei, Shi, Yatong, Hu, Biyang
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Sprache:eng
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Zusammenfassung:Abstract-(Ba sub(0.4)Sr sub(0.6))TiO sub(3) (BST) ceramics with various grain sizes (0.3-3.4 mu m) were synthesized by the oxalate coprecipitation method and prepared by plasma activated sintering and conventional solid-state sintering process. The effect of grain boundary on the energy storage properties and the dielectric relaxation characteristics of BST paraelectric ceramics (Curie point approximately -67 degree C) with various grain sizes were investigated. The dielectric breakdown strength (simplified as BDS) is obviously improved and then deteriorated with decreasing grain size, accounting for the energy density variation. The enhancement of interfacial polarization at grain boundary layers has a negative effect on the BDS, leading to the decreased values for samples with grain size smaller than 0.7 mu m. In addition, the insulation effect of grain boundary barriers was discussed based on the complex impedance spectroscopy analysis, which was found to play a dominant role in controlling the BDS with coarser grain size. Among them, the sharply decreased BDS for BST with grain size of 1.8 mu m was believed to be attributed to the combination of lower grain boundary density and higher interfacial polarization, due to the significant increase of oxygen vacancies at higher sintering temperature.
ISSN:0885-3010
DOI:10.1109/TUFFC.2014.006927