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Coupling into waveguide evanescent modes with applications in electron paramagnetic resonance.

机译:耦合到波导渐逝模式及其在电子顺磁共振中的应用。

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摘要

The use of analytical and numerical techniques in solving the coupling of evanescent modes in a microwave waveguide through slots can be optimized to create a uniform magnetic field excitation on axis within a waveguide. This work has direct applications in Electron Paramagnetic Resonance (EPR) where a 100 kHz time-varying magnetic field is incident on a sample contained in a microwave cavity. Typical cavity designs do not take into consideration the uniformity of the 100 kHz field modulation and assume it to be uniform enough over the sample region from quasi-static principles. This work shows otherwise and uses Ansoft (Pittsburgh, PA) High Frequency Structure Simulator (HFSS; version 12.0) and analytical dyadic Green's functions to understand the coupling mechanisms.;The techniques described in this work have shown that electromagnetic modes form in a rectangular and cylindrical waveguide domain even at frequencies a number of orders of magnitude below the waveguide cut-off frequencies. With slot thicknesses very small compared to a wavelength, Born's first approximation must be modified to account for a near field secondary wave. Additionally, mutual coupling between multiple slots has been shown to influence the overall magnetic field profile down the axis of the waveguide and in certain circumstances becomes more complex from interactions outside of the domain of the dyadic Green's functions.;A cylindrical TE01U cavity resonant at W-band (94 GHz) is proposed where both the microwave magnetic field and, from this work, the 100 kHz time-varying magnetic field incident on the sample are uniform. This type of resonator is highly desirable in EPR experiments where inhomogeneity of magnetic fields affect signal purity. With the technology outlined in this work, experiments where a uniform field modulation amplitude is swept over the entire spectra to obtain pure absorption is feasible. This work advances the cutting edge of resonator design and enables new experiments to be performed at high field EPR.
机译:解析和数值技术在解决通过缝隙的微波波导中消逝模式的耦合中的使用可以得到优化,以在波导内的轴上产生均匀的磁场激励。这项工作在电子顺磁共振(EPR)中具有直接应用,在该电子顺磁共振中,100 kHz时变磁场入射到微波腔中包含的样品上。典型的腔体设计没有考虑100 kHz场调制的均匀性,而是根据准静态原理假定其在整个样本区域内足够均匀。这项工作另有说明,并使用Ansoft(宾夕法尼亚州匹兹堡)高频结构仿真器(HFSS; 12.0版)和解析二分格林函数来理解耦合机理。这项工作中描述的技术表明,电磁模式以矩形和矩形形式形成。甚至在比波导截止频率低几个数量级的频率处也可以形成圆柱形波导域。与波长相比,缝隙厚度非常小,必须修改Born的一阶近似值以解决近场二次波的问题。此外,已经显示出多个缝隙之间的相互耦合会影响整个磁场沿波导轴的分布,并且在某些情况下会由于二进格林函数的域外的相互作用而变得更加复杂。提出了一个频带(94 GHz),其中微波磁场和入射到样品上的100 kHz时变磁场都是均匀的。这种类型的谐振器在EPR实验中非常需要,其中磁场的不均匀性会影响信号纯度。利用这项工作中概述的技术,进行在整个光谱上扫描均匀场调制幅度以获得纯吸收的实验是可行的。这项工作推进了谐振器设计的前沿,并使在高场EPR下可以进行新的实验。

著录项

  • 作者

    Sidabras, Jason W.;

  • 作者单位

    Marquette University.;

  • 授予单位 Marquette University.;
  • 学科 Engineering Electronics and Electrical.;Biophysics General.;Physics Electricity and Magnetism.
  • 学位 M.S.
  • 年度 2010
  • 页码 94 p.
  • 总页数 94
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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