Synthesis and Characterization of Rare Earth Doped Ferrite / Polyethylene Oxide Nanocomposites

Muhammad Ishfaq, Mahvish Gul, H. Alamri, Gulfam Nasar, Faseeh Ur Raheem
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引用次数: 1

Abstract

Nano-sized Li0.5Ni0.48Tb0.02Dy0.1Fe1.9O4 spinel ferrite nanoparticles were synthesized employing the micro-emulsion synthesis method. Polyethylene oxide was prepared through in-situ polymerization route. The ferrite-polymer nanocomposites have been synthesized by combining Li0.5Ni0.48Tb0.02Dy0.1Fe1.9O4 ferrite with polyethylene oxide polymer. Spectral, structural, morphological, and dielectric properties of the prepared nano-ferrite powders as well as nanocomposites were investigated by “X-ray diffraction analysis” (XRD), “scanning electron microscopy” (SEM), “Fourier transform infrared spectroscopy” (FTIR) and dielectric measurements. XRD analysis confirmed the synthesis of single-phase spinel structure only. The dielectric parameter was augmented with an increase of ferrite amount. FTIR spectra confirmed the existence of interactions between polyethylene oxide and ferrite particles. SEM study revealed that the nanocomposites comprised core/shell structure and inhomogeneous distribution of grain size. The dielectric parameters such as “real part of dielectric constant” (?), “imaginary part of dielectric constant” (?"), “tan loss”, “AC conductivity” and “quality factor” were investigated in the required range of frequency; that is, 1 MHz – 3 GHz. The peaking behavior has been observed for real (??) and “imaginary (???) parts of dielectric constant” and “dielectric loss” (tan?). “The peaking behavior” was detected beyond 1.5 GHz. A decrease in “the dielectric constants” and “dielectric loss” was found to with the increasing frequency. Dielectric parameters have been well elucidated by explaining “Debye-type relaxation model” in agreement with two layer “Koop's phenomenological theory”. The present investigated samples might have potential applications in high frequency.
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稀土掺杂铁氧体/聚乙烯氧化物纳米复合材料的合成与表征
采用微乳液合成方法合成了纳米尖晶石铁素体纳米粒子li0.5 ni0.48 tb0.02 dy0.1 fe1.90 o4。采用原位聚合法制备了聚氧聚乙烯。将li0.5 ni0.48 tb0.02 dy0.1 fe1.90 o4铁氧体与聚氧化物聚合物结合,合成了铁氧体-聚合物纳米复合材料。采用x射线衍射分析(XRD)、扫描电子显微镜(SEM)、傅里叶红外光谱(FTIR)和介电测量等方法对制备的纳米铁氧体粉末和纳米复合材料的光谱、结构、形态和介电性能进行了研究。XRD分析证实合成产物仅为单相尖晶石结构。电介质参数随铁氧体用量的增加而增大。FTIR光谱证实了聚乙烯氧化物与铁氧体颗粒之间存在相互作用。SEM研究表明,纳米复合材料具有核壳结构,晶粒尺寸分布不均匀。在要求的频率范围内,考察了介质参数“介电常数实部”(?)、“介电常数虚部”(?)、“tan损耗”、“交流电导率”和“品质因子”;即1mhz ~ 3ghz。在介电常数的实部(??)和虚部(??)以及介电损耗(??)中观察到了峰值行为。在1.5 GHz以上检测到“峰值行为”。“介电常数”和“介电损耗”随频率的增加而减小。通过解释符合两层“Koop现象学理论”的“debye型松弛模型”,很好地阐明了介电参数。本文所研究的样品在高频领域具有潜在的应用前景。
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