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Broadening of EM Energy-Absorption Frequency Band by Micrometer-to-Nanometer Grain Size Reduction in NiZn Ferrite

机译:NiZn铁氧体微米级至纳米级晶粒尺寸减小法扩展了EM能量吸收频带

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Prior to its use for microwave absorption, NiZn ferrite with certain compositions and with ultrafine microstructures (submicronanoscale) have been fabricated to investigate the best chemical composition and microstructure for such absorption. A mixture of iron oxide $({rm Fe}_{2}{rm O}_{3})$, nickel oxide (NiO) and zinc oxide (ZnO) was weighed according to the targeted proportion, milled using the mechanical alloying technique and sintered at a temperature of 900$ ^{circ}{rm C}$ for 10 h to form nickel zinc ferrite $({rm Ni}_{rm x}{rm Zn}_{1-{rm x}}{rm Fe}_{2}{rm O}_{4})$. X-ray diffractometry (XRD), scanning transmission electron microscopy (STEM) and field emission electron microscopy (FeSEM) were used to investigate the crystalline phase formation, particle size and surface morphology, respectively. The toroidal samples were further measured using an Agilent 4291B impedance analyzer with the frequency range from 1 MHz to 1 GHz to investigate the materials complex permeability component of $mu^{prime}$ and $mu^{primeprime}$. The XRD results show that at 900$ ^{circ}{rm C}$ the full phase of nickel zinc ferrite was formed. The average particle size was 89.1 nm. The resulting morphology was a homogeneous microstructure with small grain size and a uniform grain size distribution via the mechanical alloying technique. A significantly important result was established: that it was possible to extend the energy absorption frequency range by reducing the grain size from micrometer to nanometer, using samples of the same chemical composition.
机译:在将其用于微波吸收之前,已经制造了具有一定成分和超微结构(亚微米/纳米级)的NiZn铁氧体,以研究这种吸收的最佳化学成分和微观结构。根据目标比例称量氧化铁$({rm Fe} _ {2} {rm O} _ {3})$,氧化镍(NiO)和氧化锌(ZnO)的混合物,并使用机械合金化方法进行研磨技术并在900 $ ^ {circ} {rm C} $的温度下烧结10小时,以形成镍锌铁氧体$({rm Ni} _ {rm x} {rm Zn} _ {1- {rm x}} {rm Fe} _ {2} {rm O} _ {4})$。用X射线衍射仪(XRD),扫描透射电子显微镜(STEM)和场发射电子显微镜(FeSEM)分别研究了晶相的形成,粒径和表面形态。使用Agilent 4291B阻抗分析仪在1 MHz至1 GHz的频率范围内进一步测量环形样品,以研究材料的复磁导率分量mu和mu。 XRD结果表明,在900℃时,形成了镍锌铁氧体的全相。平均粒径为89.1nm。通过机械合金化技术,所得到的形态是具有小晶粒尺寸和均匀晶粒尺寸分布的均质微观结构。已建立了一个重要的重要结果:使用相同化学成分的样品,可以通过将晶粒尺寸从微米减小到纳米来扩展能量吸收频率范围。

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