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Novel tunneling diodes for a high performance infrared rectenna .

机译:新型高性能红外整流隧道二极管。

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摘要

Since the 1960s, metal-insulator-metal (MIM) tunneling diodes have been used for detecting and mixing electromagnetic waves up to infrared frequencies. To improve the wave coupling efficiency, an antenna is usually integrated with a MIM diode, and this integrated structure is known as a "rectenna" which can rectify incident waves. Although antenna coupled MIM diodes can detect and rectify infrared waves, the energy conversion efficiency of these structures is usually very low largely because of the response time of the tunnel junction. This thesis summarizes an attempt to improve the power conversion efficiency of the rectenna. As a result, novel tunneling diodes have been developed using a geometric field enhancement (GFE) technique, which takes advantage of the "lightning rod" effect. The GFE technique is implemented by using a pointed electrode, creating an asymmetric electric field in the region of the tunnel barrier. Thus, the tunneling current in this system can be asymmetric with respect to the sign of the applied bias. Furthermore, the geo metric structure of these novel optical rectennas provides the appropriate conditions for the excitation of surface plasmon resonances. These resonances further enhance the junction's electric field, allowing for larger current flow, effectively lowering the diodes tunneling resistance.;Three different types of tunneling diodes are developed and explored in this research: a perfect planar type tunneling diode, an asymmetric tunneling diode (ATD), and a focused asymmetric metal-oxide-metal (FAMIM) tunneling diode. The fabrication processes for each new tunneling diode have been successfully developed. The degree of performance improvement achieved by each process is summarized. This thesis documents the highest MIM detection sensitivities of 31 V-1 and 22 V -1 reported in open literature for planar type tunneling diodes and ATDs, respectively. Improvements in tunneling current nonlinearity (curvature of the current-voltage plot) of 350 % and 33 % are achieved for ATDs and FAMIM diodes, respectively.
机译:自1960年代以来,金属-绝缘体-金属(MIM)隧道二极管已用于检测和混合电磁波,直至红外频率。为了提高波耦合效率,天线通常与MIM二极管集成在一起,这种集成结构称为“整流天线”,可以对入射波进行整流。尽管天线耦合的MIM二极管可以检测和整流红外波,但是由于隧道结的响应时间,这些结构的能量转换效率通常非常低。本文总结了提高整流天线功率转换效率的尝试。结果,已经利用几何场增强(GFE)技术开发了新颖的隧穿二极管,该技术利用了“避雷针”效应。 GFE技术是通过使用尖头电极在隧道势垒区域中产生不对称电场来实现的。因此,该系统中的隧道电流相对于所施加的偏压的符号可以是不对称的。此外,这些新型光学整流天线的几何结构为激发表面等离子体激元共振提供了适当的条件。这些共振进一步增强了结的电场,允许更大的电流流过,有效地降低了二极管的隧穿电阻。这项研究开发并探索了三种不同类型的隧穿二极管:完美的平面型隧穿二极管,非对称隧穿二极管(ATD) )和聚焦的不对称金属氧化物金属(FAMIM)隧穿二极管。每个新的隧穿二极管的制造工艺已成功开发。总结了每个过程实现的性能改进程度。本论文记录了公开文献中分别针对平面型隧穿二极管和ATD的最高MIM检测灵敏度,分别为31 V-1和22 V -1。 ATD和FAMIM二极管的隧道电流非线性度(电流-电压曲线的曲率)分别提高了350%和33%。

著录项

  • 作者

    Choi, Kwangsik.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Engineering General.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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