D. Bochenek, D. Brzezińska, P. Niemiec, L. Kozielski
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引用次数: 0
摘要
本文介绍了通过固态反应法获得的掺杂 La(x = 0.00-0.06)的无铅 Ba1-3/2xLax(Fe0.5Nb0.5)O3(BFNxLa)陶瓷材料的研究成果。对 BFNxLa 陶瓷样品的测试包括结构(X 射线)、形态(SEM、EDS、EPMA)、直流电导和介电测量。对所有 BFNxLa 陶瓷样品进行的 X 射线测试表明,它们具有空间群为 Pm3¯m 的包晶型立方结构。在镧含量最高的样品中,即 x = 0.04(BFN4La)和 x = 0.06(BFN6La)的样品中,X 射线分析还显示出少量的热绿体 LaNbO4 次生相。在 BFNxLa 陶瓷样品的微观结构中,平均晶粒尺寸随着 La 含量的增加而减小,从而影响了它们的介电性能。BFN 陶瓷显示出弛豫特性、扩散相变和室温下极高的介电常数(1 kHz 时为 56,750 )。镧的掺入降低了 BFNxLa 陶瓷样品的介电系数,但有效降低了介电损耗和导电率。所有 BFNxLa 样品在较低频率下都表现出类似德拜(Debye)的弛豫行为;介电常数的频率分散性随着镧掺量的增加而变弱。研究表明,在 BFN 中加入适量的镧可以获得较高的介电常数,同时降低介电损耗和导电率,这有利于它们在储能方面的应用。
The Influence of Lanthanum Admixture on Microstructure and Electrophysical Properties of Lead-Free Barium Iron Niobate Ceramics
This article presents the research results of lead-free Ba1−3/2xLax(Fe0.5Nb0.5)O3 (BFNxLa) ceramic materials doped with La (x = 0.00–0.06) obtained via the solid-state reaction method. The tests of the BFNxLa ceramic samples included structural (X-ray), morphological (SEM, EDS, EPMA), DC electrical conductivity, and dielectric measurements. For all BFNxLa ceramic samples, the X-ray tests revealed a perovskite-type cubic structure with the space group Pm3¯m. In the case of the samples with the highest amount of lanthanum, i.e., for x = 0.04 (BFN4La) and x = 0.06 (BFN6La), the X-ray analysis also showed a small amount of pyrochlore LaNbO4 secondary phase. In the microstructure of BFNxLa ceramic samples, the average grain size decreases with increasing La content, affecting their dielectric properties. The BFN ceramics show relaxation properties, diffusion phase transition, and very high permittivity at room temperature (56,750 for 1 kHz). The admixture of lanthanum diminishes the permittivity values but effectively reduces the dielectric loss and electrical conductivity of the BFNxLa ceramic samples. All BFNxLa samples show a Debye-like relaxation behavior at lower frequencies; the frequency dispersion of the dielectric constant becomes weaker with increasing admixtures of lanthanum. Research has shown that using an appropriate amount of lanthanum introduced to BFN can obtain high permittivity values while decreasing dielectric loss and electrical conductivity, which predisposes them to energy storage applications.