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Applications of Kinetic Inductance: Parametric Amplifier & Phase Shifter, 2DEG Coupled Co-planar Structures & Microstrip to Slotline Transition at RF Frequencies.

机译:动力学电感的应用:参数放大器和移相器,2DEG耦合共面结构以及射频频率下微带至缝隙线的过渡。

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摘要

Kinetic inductance springs from the inertia of charged mobile carriers in alternating electric fields and it is fundamentally different from the magnetic inductance which is only a geometry dependent property. The magnetic inductance is proportional to the volume occupied by the electric and magnetic fields and is often limited by the number of turns of the coil. Kinetic inductance on the other hand is inversely proportional to the density of electrons or holes that exert inertia, the unit mass of the charge carriers and the momentum relaxation time of these charge carriers, all of which can be varied merely by modifying the material properties. Highly sensitive and broadband signal amplifiers often broaden the field of study in astrophysics. Quantum-noise limited travelling wave kinetic inductance parametric amplifiers offer a noise figure of around 0.5 K +/- 0.3 K as compared to 20 K in HEMT signal amplifiers and can be designed to operate to cover the entire W-band (75 GHz -- 115 GHz).;The research cumulating to this thesis involves applying and exploiting kinetic inductance properties in designing a W-band orthogonal mode transducer, quadratic gain phase shifter with a gain of ~49 dB over a meter of microstrip transmission line. The phase shifter will help in measuring the maximum amount of phase shift Delta&phis;max(I) that can be obtained from half a meter transmission line which helps in predicting the gain of a travelling wave parametric amplifier. In another project, a microstrip to slot line transition is designed and optimized to operate at 150 GHz and 220 GHz frequencies, that is used as a part of horn antenna coupled microwave kinetic inductance detector proposed to operate from 138 GHz to 250 GHz. In the final project, kinetic inductance in a 2D electron gas (2DEG) is explored by design, simulation, fabrication and experimentation. A transmission line model of a 2DEG proposed by Burke (1999), is simulated and verified experimentally by fabricating a capacitvely coupled 2DEG mesa structure. Low temperature experiments were done at 77 K and 10 K with photo-doping the 2DEG. A circuit model of a 2DEG coupled co-planar waveguide model is also proposed and simulated.
机译:动感应源自于在交变电场中带电的移动载流子的惯性,它与磁感应从根本上不同,磁感应仅是几何形状相关的特性。磁电感与电场和磁场所占的体积成比例,并且通常受线圈匝数的限制。另一方面,动电感与施加惯性的电子或空穴的密度,电荷载流子的单位质量以及这些电荷载流子的动量弛豫时间成反比,所有这些仅通过改变材料性能即可改变。高灵敏度和宽带信号放大器通常会拓宽天体物理学的研究领域。与HEMT信号放大器中的20 K相比,受量子噪声限制的行波动电感参量放大器提供的噪声系数约为0.5 K +/- 0.3 K,并且可以设计为覆盖整个W波段(75 GHz- 115 GHz)。本文的研究工作涉及在设计W带正交模式换能器,二次增益移相器(在一米的微带传输线上获得〜49 dB的增益)时应用和利用动电感特性。移相器将有助于测量可以从半米传输线获得的最大相移Δφmax(I),这有助于预测行波参数放大器的增益。在另一个项目中,设计并优化了从微带到缝隙线的过渡,以在150 GHz和220 GHz频率下工作,并将其用作建议在138 GHz至250 GHz下工作的喇叭天线耦合微波动电感检测器的一部分。在最终项目中,通过设计,仿真,制造和实验来探索2D电子气(2DEG)中的动电感。 Burke(1999)提出的2DEG传输线模型是通过制造电容耦合的2DEG台面结构进行仿真和实验验证的。用2DEG光掺杂在77 K和10 K下进行了低温实验。还提出并仿真了2DEG耦合共面波导模型的电路模型。

著录项

  • 作者

    Surdi, Harshad.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.;Electromagnetics.
  • 学位 M.S.
  • 年度 2016
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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