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Characterization and Study of Ferromagnetic Resonance of Micro and Nano Ferrites at Microwave and Millimeter waves.

机译:微米和纳米铁氧体在微波和毫米波处的表征和研究。

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摘要

Ferrites have been used in magnetic recording devices, isolators, circulators and as permanent magnets for a long time. However, the recent developments in semiconductor technology and nanoelectronics have led to a significant growth in high frequency applications. As the device size becomes smaller and applications shift towards millimeter wavelengths, the need for novel materials capable of handling high frequencies has increased. This has generated interest in the study of materials in the nanoscale domain. Nanoferrites are being extensively studied for their potential application as high frequency absorbers, information storage media, circulators, isolators, etc. Other areas of growing interest for these materials include biomedical engineering, alternate energy, aerospace engineering and defense applications.;Nanoferrites consist of metal substituted iron oxide nanopowders that have average particle size below 100 nm. At these dimensions the domain wall resonance can be avoided since materials can exist in single domain state and thus such materials prove useful for high frequency applications. Nano-size materials have unique mechanical, electrical and magnetic properties. The unique properties of nanomaterials could be attributed to their structure which is close to that of an isolated atom or molecule. The properties of nanomaterials may not necessarily be predicted from those observed at larger scales. In fact, the electromagnetic properties of materials are known to change as particle sizes are reduced to the nanoscale. Consequently, it is necessary to characterize these materials in order to understand their behavior and better predict their potential use in high frequency applications.;A waveguide based set-up has been used here to perform transmission and reflection measurements on powdered nano-ferrite samples at microwave frequencies using a vector network analyzer. This measurement set-up is capable of accurately measuring the material properties in terms of s-parameters in the frequency range from 2 GHz to 40 GHz. The electromagnetic properties, namely, magnetic permeability and electric permittivity are derived from these parameters. The algorithm has been specifically written to calculate the real and imaginary parts of permittivity and permeability of the powdered nano-ferrite samples.;The measurements were also performed on micro-size samples to understand the dependence of material properties on particle dimensions. In order to verify the observed difference in the micro- and nano-size samples, the same powders were also analyzed by another technique at higher frequencies. Transmittance measurements were performed in the millimeter wave frequency range from 40 GHz to 120 GHz using a free-space quasi-optical millimeter wave spectrometer. The set-up is equipped with high-power backward wave oscillators. The complex permittivity for both micro- and nano-ferrites has been calculated from the measured transmittance spectrum. It was observed that the constitutive material properties, namely permittivity and permeability, as well as the ferromagnetic resonance frequency of the samples vary with the change in particle dimensions. Based on the results of these measurements, a model for calculating the ferromagnetic resonance frequency of ferrite powders has been derived, which takes into account the size and shape of the particles in the sample. It can be concluded from the size-dependent absorption properties observed in this study that these materials show promise as tunable millimeter wave absorbers.
机译:长期以来,铁氧体已用于磁记录设备,隔离器,循环器以及作为永磁体。然而,半导体技术和纳米电子学的最新发展导致高频应用的显着增长。随着设备尺寸的减小和应用向毫米波长的转移,对能够处理高频的新型材料的需求也在增加。这引起了对纳米级材料研究的兴趣。纳米铁氧体作为高频吸收剂,信息存储介质,循环器,隔离器等的潜在应用正在被广泛研究。这些材料的其他日益增长的领域包括生物医学工程,替代能源,航空工程和国防应用。平均粒径低于100 nm的取代氧化铁纳米粉。在这些尺寸下,由于材料可以以单畴状态存在,因此可以避免畴壁共振,因此证明这种材料可用于高频应用。纳米级材料具有独特的机械,电和磁性能。纳米材料的独特性质可以归因于其结构接近于孤立的原子或分子。纳米材料的性质可能不一定是从较大规模观察到的那些来预测的。实际上,已知材料的电磁特性会随着粒径减小到纳米级而改变。因此,有必要对这些材料进行表征,以了解它们的行为并更好地预测它们在高频应用中的潜在用途。此处已使用基于波导的装置对粉末状纳米铁氧体样品进行透射和反射测量。使用矢量网络分析仪的微波频率。这种测量设置能够在2 GHz至40 GHz的频率范围内以s参数精确测量材料性能。从这些参数得出电磁特性,即磁导率和介电常数。该算法是专门为计算粉末状纳米铁氧体样品的介电常数和磁导率的实部和虚部而编写的。还对微尺寸样品进行了测量,以了解材料特性对颗粒尺寸的依赖性。为了验证在微米和纳米尺寸样品中观察到的差异,还通过另一种技术以更高的频率分析了相同的粉末。使用自由空间准光学毫米波光谱仪在40 GHz至120 GHz的毫米波频率范围内进行透射率测量。该装置配备了大功率反向波振荡器。微米铁氧体和纳米铁氧体的复介电常数已从测得的透射光谱中计算得出。观察到,样品的本构材料性质,即介电常数和磁导率,以及铁磁共振频率随颗粒尺寸的变化而变化。根据这些测量的结果,得出了一个计算铁素体粉末的铁磁共振频率的模型,该模型考虑了样品中颗粒的大小和形状。从本研究中观察到的与尺寸有关的吸收特性可以得出结论,这些材料显示出可调谐毫米波吸收器的前景。

著录项

  • 作者

    Sharma, Anjali.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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