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Optimization of sintering on the structural, electrical and dielectric properties of SnO2 coated CuFe2O4 nanoparticles

机译:烧结对SnO2包覆的CuFe2O4纳米粒子的结构,电学和介电性能的优化

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An ever first attempt to synthesize nanocomposites of SnO2 coated CuFe2O4 has been made using urea-nitrate combustion method. Effect of various concentrations of SnO2 (1, 5, 10 and 20 wt.%) at three different sintering temperatures viz., 800, 1000 and 1100 degrees C for optimizing the compound formation has been studied individually. The synthesized materials were characterized by XRD, TEM, HRTEM, SAED, SEM, FT-IR, UV-vis, electrical conductivity and impedance spectra measurements. The XRD spectra reveal that 1100 degrees C-sintered sample is of ultra pure and well-defined crystalline nature irrespective of the concentration of SnO2. The grain size of the materials has been found to get increased as a function of sintering temperature and the extent of SnO2 substitution. The TEM and HRTEM figures evidence the nanocrystalline nature of the product. SAED pattern confirms the presence of single phase and polycrystalline of the final product. The band gap values were calculated from UV-vis spectra, which confirm the lowest band gap value for the 5 wt.% SnO2 added sample. The solid-state impedance and the electrical properties of the materials are in favour of the grain and grain boundary effect and the normal behavior of spinel compounds, respectively. (c) 2005 Elsevier B.V. All rights reserved.
机译:使用硝酸尿素燃烧方法进行了史无前例的合成SnO2包覆的CuFe2O4纳米复合材料的尝试。分别研究了在三种不同的烧结温度(即800、1000和1100摄氏度)下,不同浓度的SnO2(1、5、10和20 wt。%)对优化化合物形成的影响。通过XRD,TEM,HRTEM,SAED,SEM,FT-IR,UV-vis,电导率和阻抗谱测量对合成材料进行表征。 XRD谱图表明,与SnO2的浓度无关,1100℃烧结的样品具有超纯和明确的晶体性质。已经发现材料的晶粒尺寸随着烧结温度和SnO 2取代程度的增加而增加。 TEM和HRTEM数据证明了产品的纳米晶体性质。 SAED图证实了最终产物的单相和多晶的存在。由UV-可见光谱计算带隙值,其确认了添加5重量%的SnO 2样品的最低带隙值。材料的固态阻抗和电特性分别有利于晶粒和晶界效应以及尖晶石化合物的正常行为。 (c)2005 Elsevier B.V.保留所有权利。

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