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Flexible magnetic composite for antenna applications in radio frequency identification (RFID).

机译:柔性磁性复合材料,用于射频识别(RFID)中的天线应用。

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摘要

This work includes formulation of mechanically flexible magnetic composites and application to a quarter-wavelength microstrip patch antenna benchmarking structure operating in the lower UHF spectrum (∼300-500 MHz) to investigate capability for miniaturization. A key challenge is to introduce sufficiently low magnetic loss for successful application. Particles of NiZn ferrite and BaCo ferrite, also known as Co2Z, were characterized. Flexible magnetic composites comprised of 40 vol% NiZn ferrite or BaCo ferrite particles in a silicone matrix were formulated. Effects of treating the particles with silane in the formulation process were not detectable, but larger particle size showed to increase epsilon* and mu*. By comparing epsilon* and mu* of the composites, BaCo ferrite was selected for the antenna application. Antennas on the developed magnetic composite and pure silicone substrates were electromagnetically modeled in a full-wave FEM EM solver. A prototype of the antenna on the magnetic composite was fabricated. Good agreement between the simulated and measured results was found. Comparison of the antennas on the magnetic composite versus the pure silicone substrate showed miniaturization capability of 2.4X and performance differences of increased bandwidth, reduced Q, and reduced gain. A key finding of this study is that a small amount of permeability (mur∼2.5) can provide relatively substantial capability for miniaturization, while sufficiently low magnetic loss can be introduced for successful application at the targeted operating frequency. The magnetic composite showed the capability to fulfill this balance and to be a feasible option for RFID applications in the lower UHF spectrum.
机译:这项工作包括机械柔性磁性复合材料的配方,并应用于工作在较低UHF频谱(约300-500 MHz)的四分之一波长微带贴片天线基准结构中,以研究其小型化能力。一个关键的挑战是引入足够低的磁损耗以成功应用。表征了NiZn铁氧体和BaCo铁氧体(也称为Co2Z)的颗粒。配制了在硅树脂基质中包含40%(体积)NiZn铁氧体或BaCo铁氧体颗粒的柔性磁性复合材料。在配制过程中无法检测到用硅烷处理颗粒的效果,但是较大的颗粒尺寸会增加ε*和mu *。通过比较复合材料的ε*和mu *,选择了BaCo铁氧体作为天线应用。在全波FEM EM解算器中对开发的磁性复合材料和纯有机硅衬底上的天线进行电磁建模。制作了磁性复合材料上天线的原型。在模拟结果和测量结果之间找到了很好的一致性。将磁性复合材料上的天线与纯有机硅衬底上的天线进行比较,结果表明其微型化能力为2.4倍,带宽增加,Q减小和增益减小的性能差异。这项研究的关键发现是,少量的磁导率(mur〜2.5)可以提供相当大的微型化能力,同时可以引入足够低的磁损耗,以便在目标工作频率下成功应用。磁性复合材料具有实现这种平衡的能力,并且对于低UHF频谱中的RFID应用而言是可行的选择。

著录项

  • 作者

    Martin, Lara Jean.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 197 p.
  • 总页数 197
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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