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首页> 外文期刊>CERAMICS INTERNATIONAL >Enhancement of dielectric properties and energy storage density of bismuth and lithium co-substituted strontium titanate ceramics
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Enhancement of dielectric properties and energy storage density of bismuth and lithium co-substituted strontium titanate ceramics

机译:增强铋和锂共取锶钛陶瓷的介电性能和储能密度

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摘要

Polycrystalline Bismuth and Lithium Co-Substituted Strontium Titanate Sr(1-x)(Bi,Li)(x)TiO3, was prepared using the solid-state method with microwave assisted heating of initial materials. The effect of Bi3+ and Li+ concentration on the crystal structure, microstructure, and permittivity and energy storage properties of SrTiO3 ceramics are investigated. The phase and structure have been confirmed by XRD along with Rietveld refinement studies. Morphological investigations have been carried out using FESEM. Frequency and temperature dependence of dielectric permittivity was investigated using impedance spectroscopy. The sample with x = 0.02 has shown dielectric relaxation behavior. The activation energy of relaxation is found to be 1.2 eV and relaxation time equals 1.12 x 10(-7) sec. The room temperature P-E loop has been investigated, and the result confirms that there is no signature of the ferroelectric phase in all samples. The energy storage density was theoretically estimated in the present study using a P-E loop. The results showed an astonishing ten-time increase in energy storage density with 8% co-substitution. With increasing x, the grain size steadily decreased, and dielectric breakdown strength increased, yielding a higher energy storage density. The obtained results herald a promising future in the development of electrical capacitors for energy storage applications.
机译:使用具有微波辅助加热的初始材料的固态方法制备多晶铋和钛酸钛酸钛酸酯(1-X)(Bi,Li)(X)TiO3。研究了Bi3 +和Li +浓度对SRTIO3陶瓷晶体结构,微观结构和介电常数和能量储存性能的影响。 XRD通过XRD和Rietveld改进研究证实了相和结构。使用FeSEM进行了形态学研究。使用阻抗光谱研究介电介电常数的频率和温度依赖性。具有X = 0.02的样品显示了介电松弛行为。发现弛豫的激活能量为1.2eV和弛豫时间等于1.12×10(-7)秒。研究了室温P-E环,结果证实,所有样品中没有铁电相的签名。使用P-E循环在本研究中理论上估计能量存储密度。结果表明,能量储存密度令人惊讶的十倍增加,具有8%的共替代。随着X的增加,晶粒尺寸稳定地降低,介电击穿强度增加,产生更高的能量储存密度。所获得的结果使能量存储应用的电容器开发的有希望的未来。

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