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Chemical and Physical Properties of the BLT4 Ultra Capacitor—A Suitable Material for Ultracapacitors

机译:BLT4超级电容器的化学和物理性质-一种适合超级电容器的材料

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摘要

This paper describes the properties of a lead-free ceramic material based on barium titanate, designed for the construction of ultracapacitors and sensors used in mechatronic systems. The admixture of lanthanum (La ) served as a modifier. The ceramic powders were obtained by the solid phase reaction method (conventional method—mixed oxides method—MOM). Technological conditions of the synthesis process were determined on the basis of thermal analysis. The obtained samples are characterized, at room temperature ( < ), by a single-phase tetragonal structure and a P4mm space group. Properly developed large grains ( = 5 µm) contributed to the increase in electric permittivity, the maximum value of which is at the level of ≈ 112,000, as well as to a strong decrease in specific resistance in the ferroelectric phase, whereas above the Curie temperature, by creating a potential barrier at their boundaries, there was a a rapid increase in resistivity. The temperature coefficient of resistance of the obtained posistor is 10.53%/K. The electrical properties of the obtained ceramics were examined using impedance spectroscopy. In order to analyze the obtained results, a method of comparing the behavior of the real object and its replacement system in a specific frequency region was used, whereas the Kramer–-Kroning (K–K) test was used to determine the consistency of the measured data. The proper selection of the stoichiometry and synthesis conditions resulted in the creation of an appropriate concentration of donor levels and oxygen gaps, which in turn resulted in a significant increase in the value of electrical permittivity, with small values of the angle of dielectric loss tangent. This fact predisposes the discussed material for certain applications (in the construction of ultracapacitors, among others).
机译:本文介绍了一种基于钛酸钡的无铅陶瓷材料的性能,该材料设计用于制造机电系统中的超级电容器和传感器。镧(La)的混合物用作改性剂。通过固相反应法(常规方法-混合氧化物方法-MOM)获得陶瓷粉末。合成过程的技术条件是根据热分析确定的。所获得的样品在室温(<)下具有单相四方结构和P4mm空间群的特征。适当发育的大晶粒(= 5 µm)有助于介电常数的增加,介电常数的最大值在≈112,000的水平,并且在铁电相中(居里温度以上)电阻率大大降低。通过在它们的边界处创建一个势垒,电阻率迅速增加。所得的热敏电阻的电阻温度系数为10.53%/ K。使用阻抗谱检查获得的陶瓷的电性能。为了分析获得的结果,使用了一种比较实际对象及其替换系统在特定频率范围内行为的方法,而使用Kramer-Kroning(K-K)检验来确定对象的一致性。测量数据。正确选择化学计量和合成条件会导致产生适当浓度的供体能级和氧间隙,进而导致介电常数值显着增加,而介电损耗角正切值较小。这一事实使所讨论的材料易于用于某些应用(在超级电容器的构造中)。

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