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Enhancement of Complex Permittivity and Attenuation Properties of Recycled Hematite (α-Fe2O3) Using Nanoparticles Prepared via Ball Milling Technique

机译:使用球磨技术制备的纳米颗粒增强再生赤铁矿(α-Fe2O3)的复杂介电常数和衰减性能

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摘要

The purpose of this study was to synthesize high-quality recycled α-Fe2O3 to improve its complex permittivity properties by reducing the particles to nanosize through high energy ball milling. Complex permittivity and permeability characterizations of the particles were performed using open-ended coaxial and rectangular waveguide techniques and a vector network analyzer. The attenuation characteristics of the particles were analyzed with finite element method (FEM) simulations of the transmission coefficients and electric field distributions using microstrip model geometry. All measurements and simulations were conducted in the 8−12 GHz range. The average nanoparticle sizes obtained after 8, 10 and 12 h of milling were 21.5, 18, and 16.2 nm, respectively, from an initial particle size of 1.73 µm. The real and imaginary parts of permittivity increased with reduced particle size and reached maximum values of 12.111 and 0.467 at 8 GHz, from initial values of 7.617 and 0.175, respectively, when the particle sizes were reduced from 1.73 µm to 16.2 nm. Complex permeability increased with reduced particle size while the enhanced absorption properties exhibited by the nanoparticles in the simulations confirmed their ability to attenuate microwaves in the X-band frequency range.
机译:本研究的目的是合成高质量的再循环α-Fe2O3,通过将颗粒通过高能球磨来减少纳米粒化来改善其复杂介质性能。使用开口的同轴和矩形波导技术和矢量网络分析仪进行颗粒的复杂介电常数和渗透性表征。使用微带模型几何与传输系数和电场分布的有限元方法(FEM)模拟分析颗粒的衰减特性。所有测量和模拟都在8-12 GHz范围内进行。在铣削8,10和12小时后获得的平均纳米颗粒尺寸分别从初始粒度为1.73μm的初始粒度为21.5,18和16.2nm。介电常数的真实和虚部的部分随着粒径的降低而增加,并且在8GHz的最大值为12.111和0.467,分别从7.617和0.175的初始值分别从1.73μm降至16.2nm时。复杂渗透率随着粒度的降低而增加,而纳米颗粒在模拟中表现出的增强的吸收特性证实了它们在X波段频率范围内衰减微波的能力。

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