无铅双包晶 Sr2YbNbO6 随温度变化的介电机理

IF 1.7 4区 材料科学 Q2 MATERIALS SCIENCE, CERAMICS Journal of Electroceramics Pub Date : 2024-07-05 DOI:10.1007/s10832-024-00354-0
Arpita Barua, Sanjoy Kumar Dey, Sanjay Kumar
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摘要

通过固态陶瓷加工技术合成了双包晶 Sr2YbNbO6(锶镱铌氧化物,SYN)。SYN 呈单斜晶体结构,空间群为 P21/n。SYN 为多晶体,晶粒大小约为 2.38 μm。SYN 的拉曼光谱分析显示其存在 24 个拉曼活性模式。傅立叶红外光谱分析了与 YbO6 和 NbO6 八面体的弯曲和伸展振动相关的频带。得出 SYN 的光带隙为 3.08 eV。在 50 Hz 至 1 MHz 频率和 303-513 K 温度范围内对样品的介电性能进行了研究。SYN 的介电弛豫具有多分散性,并使用 Cole-Cole 模型进行了分析。SYN 的活化能为 0.52 eV,这表明传导与 p 型极子的跳变有关。
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Temperature dependent dielectric mechanism of lead-free double perovskite Sr2YbNbO6

The double perovskite Sr2YbNbO6 (Strontium ytterbium niobium oxide, SYN) has been synthesized by solid-state ceramic processing technique. SYN crystallizes in monoclinic structure with P21/n space group. SYN is polycrystalline in nature with grain size ~ 2.38 μm. The Raman spectrum analysis of SYN reveals the presence of 24 Raman active modes. The bands associated with the bending and stretching vibrations of the YbO6 and NbO6 octahedra has been analysed using its FTIR spectrum. The optical band gap of SYN has been obtained to be 3.08 eV. The dielectric properties of the sample have been investigated in between 50 Hz to 1 MHz frequency and 303‒513 K temperature. The dielectric relaxation of SYN is polydispersive in nature and has been analysed using the Cole-Cole model. The activation energy of SYN is 0.52 eV which points towards the conduction associated with the hopping of p-type polaron.

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来源期刊
Journal of Electroceramics
Journal of Electroceramics 工程技术-材料科学:硅酸盐
CiteScore
2.80
自引率
5.90%
发文量
22
审稿时长
5.7 months
期刊介绍: While ceramics have traditionally been admired for their mechanical, chemical and thermal stability, their unique electrical, optical and magnetic properties have become of increasing importance in many key technologies including communications, energy conversion and storage, electronics and automation. Electroceramics benefit greatly from their versatility in properties including: -insulating to metallic and fast ion conductivity -piezo-, ferro-, and pyro-electricity -electro- and nonlinear optical properties -feromagnetism. When combined with thermal, mechanical, and chemical stability, these properties often render them the materials of choice. The Journal of Electroceramics is dedicated to providing a forum of discussion cutting across issues in electrical, optical, and magnetic ceramics. Driven by the need for miniaturization, cost, and enhanced functionality, the field of electroceramics is growing rapidly in many new directions. The Journal encourages discussions of resultant trends concerning silicon-electroceramic integration, nanotechnology, ceramic-polymer composites, grain boundary and defect engineering, etc.
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