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Investigation of carbon nanotube properties and applications at microwave and THz frequencies.

机译:研究碳纳米管的性质及其在微波和太赫兹频率下的应用。

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摘要

This dissertation presents research on synthesis, high-power microwave post-synthetic purification and high frequency characterization of Carbon Nanotubes (CNT). First, CNTs are synthesized using a Chemical Vapor Deposition system. The impact of substrate and methane flow rate on CNT growth is studied using Scanning Electron Microscopy, Transmission Electron Microscopy and Raman microscopy. Second, the microwave irradiation effects on purified HiPCO and CoMoCat Single-Walled CNT thin films are investigated. The measured drastic THz power transmission increase (>10 times) indicates a significant metallic content reduction after the irradiation. The Raman spectra also confirm the metallic-to-semiconducting ratio of Raman-active CNTs decreases by up to 33.3%. The observed microwave-induced effects may potentially lead to a convenient scheme for CNT demetalization. Third, Multi-Walled CNT papers are characterized from 8 to 50 GHz by rectangular waveguide measurements using a vector network analyzer. A rigorous algorithm is developed to extract the samples' effective complex permittivity and permeability from the measured S-parameters. Unlike other reported work, this method does not impose the unity permeability assumption. The algorithm is verified by finite-element simulations and the uncertainties for the characterization method are analyzed. The effective medium theory is then applied to obtain the intrinsic CNT properties. Furthermore, Terahertz Time-Domain Spectroscopy is used to characterize the samples from 50 to 370 GHz. Both transmission and reflection experiments are performed to simultaneously extract the permittivity and permeability. The extracted permittivity is fitted with a Drude-Lorentz model from 8 to 370 GHz. Finally, individual CNT characterizations at microwave frequency are studied. The impacts from impedance mismatching and parasitics on measurement sensitivity are systematically studied, revealing that the parasitic effect is possibly dominant above 10 GHz. A tapered coplanar waveguide test fixture is designed using Advanced Design System (ADS) to improve the impedance mismatching and minimize the test fixture parasitics, therefore optimize the measurement sensitivity. A de-embedding procedure to obtain the CNT's intrinsic electrical properties is presented and demonstrated with ADS simulations. In addition, the test fixture fabrication process is discussed, which is an ongoing research work. At the end, the conclusions of this dissertation are drawn and possible future works are discussed.
机译:本文对碳纳米管(CNT)的合成,高功率微波后合成纯化和高频表征进行了研究。首先,使用化学气相沉积系统合成CNT。使用扫描电子显微镜,透射电子显微镜和拉曼显微镜研究了底物和甲烷流速对CNT生长的影响。其次,研究了微波辐射对纯化的HiPCO和CoMoCat单壁CNT薄膜的影响。测得的太赫兹功率传输急剧增加(> 10倍),表明辐照后金属含量显着降低。拉曼光谱还证实了拉曼活性碳纳米管的金属与半导体的比率下降了高达33.3%。观察到的微波诱导效应可能潜在地导致用于CNT脱金属的便利方案。第三,使用矢量网络分析仪通过矩形波导测量在8至50 GHz范围内表征多壁CNT纸。开发了一种严格的算法来从测量的S参数中提取样品的有效复介电常数和磁导率。与其他已报道的工作不同,此方法不强加单位渗透率假设。通过有限元仿真验证了该算法,并分析了表征方法的不确定性。然后将有效介质理论应用于获得固有的CNT特性。此外,太赫兹时域光谱用于表征50至370 GHz的样本。进行透射和反射实验以同时提取介电常数和磁导率。提取的介电常数与8至370 GHz的Drude-Lorentz模型拟合。最后,研究了微波频率下的单个CNT表征。系统地研究了阻抗失配和寄生效应对测量灵敏度的影响,表明在10 GHz以上,寄生效应可能占主导地位。使用高级设计系统(ADS)设计了锥形共面波导测试夹具,以改善阻抗失配并最大程度地降低测试夹具寄生效应,从而优化测量灵敏度。提出了一种去嵌入程序,以获取CNT的固有电性能,并通过ADS仿真进行了演示。另外,讨论了测试夹具的制造过程,这是一项正在进行的研究工作。最后,得出了本文的结论,并讨论了可能的未来工作。

著录项

  • 作者

    Wang, Lu.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Electronics and Electrical.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 191 p.
  • 总页数 191
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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