首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Dielectric nonlinearity and electric breakdown behaviors of Ba0.95Ca0.05Zr0.3Ti0.7O3 ceramics for energy storage utilizations
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Dielectric nonlinearity and electric breakdown behaviors of Ba0.95Ca0.05Zr0.3Ti0.7O3 ceramics for energy storage utilizations

机译:Ba0.95Ca0.05Zr0.3Ti0.7O3陶瓷的储能利用的介电非线性和电击穿行为

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摘要

Ba0.95Ca0.05Zr0.3Ti0.7O3 ceramics were prepared by a citrate method. The dielectric properties of the specimens were examined as a function of temperature, frequency and electric field. Moreover, the energy storage properties and electric breakdown behaviors of the specimens were inspected. Fitting of the dielectric constants under bias electric field to a multipolarization mechanism model resolved the contributions of involved polarization mechanisms. The result indicated that the intrinsic lattice polarization dominated the dielectric constants under strong electric field while the extrinsic contribution of polar nano-regions (PNRs) was basically faded. At the maximum applicable electric field of 160 kV/cm, the specimens achieved an energy storage density of 0.59 J/cm(3) and an energy storage efficiency of 72.8%. It was detected that the electric breakdown of the specimens initially occurred on the surfaces immediately adjacent to electrodes, followed by development of an electronic conduction pathway in the bulks. Complex impedance spectroscopy analysis determined that oxygen vacancies were the mobile charge carriers in the specimens. The occurrence of the initial breakdown was explained with respect to accumulation of oxygen vacancies in the specimens induced by strong electric field. (C) 2016 Elsevier B.V. All rights reserved.
机译:通过柠檬酸盐法制备Ba0.95Ca0.05Zr0.3Ti0.7O3陶瓷。检查样品的介电性能,该温度是温度,频率和电场的函数。此外,检查了样品的储能性能和电击穿行为。在偏置电场下将介电常数拟合到多极化机制模型中,解决了涉及的极化机制的问题。结果表明,本征晶格极化控制了强电场下的介电常数,而极性纳米区域(PNRs)的外在贡献则基本消失了。在160 kV / cm的最大适用电场下,样品的储能密度为0.59 J / cm(3),储能效率为72.8%。据检测,样品的电击穿最初发生在紧邻电极的表面上,随后在主体中形成电子传导路径。复数阻抗谱分析确定氧空位是样品中的移动电荷载体。关于由强电场引起的样品中氧空位的积累,解释了初始击穿的发生。 (C)2016 Elsevier B.V.保留所有权利。

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