首页> 外文期刊>The journal of physics and chemistry of solids >A comparative study of different concentrations of pure Zn powder effects on synthesis, structure, magnetic and microwave-absorbing properties in mechanically-alloyed Ni-Zn ferrite
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A comparative study of different concentrations of pure Zn powder effects on synthesis, structure, magnetic and microwave-absorbing properties in mechanically-alloyed Ni-Zn ferrite

机译:不同浓度纯锌粉对机械合金化镍锌铁氧体的合成,结构,磁性和微波吸收性能影响的比较研究

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In this study, a powder mixture of Zn, Fe2O3 and NiO was used to produce different compositions of Ni1-xZnxFe2O4 (x=0.36, 0.5 and 0.64) nanopowders. High-energy ball milling with a subsequent heat treatment method was carried out. The XRD results indicated that for the content of Zn, x=0.64 a single phase of Ni-Zn ferrite was produced after 30 h milling while for the contents of Zn, x=0.36 and 0.5, the desired ferrite was formed after sintering the 30 h-milled powders at 500 degrees C. The average crystallite size decreased with increase in the Zn content. A DC electrical resistivity of the Ni-Zn ferrite, however, decreased with increase in the Zn content, its value was much higher than those samples prepared by the conventional ceramic route by using ZnO instead of Zn. This is attributed to smaller grains size which were obtained by using Zn. The FT-IR results suggested two absorption bands for octahedral and tetrahedral sites in the range of 350-700 cm(-1). The VSM results revealed that by increasing the Zn content from 0.36 to 0.5, a saturation magnetization reached its maximum value; afterwards, a decrease was observed for Zn with x=0.64. Finally, magnetic permeability and dielectric permittivity were studied by using vector network analyzer to explore microwave-absorbing properties in X-band frequency. The minimum reflection loss value obtained for Ni0.5Zn0.5Fe2O4 samples, about -34 dB at 9.7 GHz, making them the best candidates for high frequency applications. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,使用Zn,Fe2O3和NiO的粉末混合物来生产Ni1-xZnxFe2O4(x = 0.36、0.5和0.64)纳米粉体的不同组成。用随后的热处理方法进行高能球磨。 X射线衍射结果表明,对于Zn含量x = 0.64,铣削30h后会生成单相的Ni-Zn铁氧体,而对于Zn含量x = 0.36和0.5,则烧结30℃即可形成所需的铁素体。在500摄氏度下h研磨粉末。平均晶粒尺寸随Zn含量的增加而减小。但是,Ni-Zn铁氧体的DC电阻率随着Zn含量的增加而降低,其值远高于使用ZnO代替Zn的常规陶瓷路线制备的样品。这归因于使用Zn获得的较小的晶粒尺寸。 FT-IR结果表明八面体和四面体部位有两个吸收带,范围为350-700 cm(-1)。 VSM结果表明,通过将Zn含量从0.36增加到0.5,饱和磁化强度达到最大值。之后,观察到锌的减少,x = 0.64。最后,利用矢量网络分析仪对磁导率和介电常数进行了研究,以探索X波段频率下的微波吸收特性。 Ni0.5Zn0.5Fe2O4样品获得的最小反射损耗值在9.7 GHz时约为-34 dB,使其成为高频应用的最佳候选者。 (C)2016 Elsevier Ltd.保留所有权利。

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