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Novel terahertz devices based on tunable 2DEG systems.

机译:基于可调2DEG系统的新型太赫兹设备。

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摘要

Promising applications in many diverse areas of human endeavor, including medicine, communications, security, and so on, terahertz (THz) technology has recently turned into a very active area of scientific research. The THz frequency band, usually defined in the 0.3-30 THz range, was for decades one of the least explored regions of the electromagnetic spectrum, mainly due to the lack of materials and devices responding to these frequencies in a controllable manner. This work presents a study of tunable two-dimensional electron-gas (2DEG) systems and how their unique physical properties can be harnessed to develop novel high-performance active THz devices and systems.;First, a new class of highly efficient THz reconfigurable devices based on graphene is proposed and experimentally demonstrated. By employing graphene, an intrinsically 2D semiconductor as the active material, device design with unprecedented degrees of freedom, low-cost, and ease of fabrication is possible thus leading to a substantial improvement with respect to the existing art in terms of controllability of THz waves. Although in the infrared/visible range the optical absorption of graphene is only a few percent and scarcely controllable, its optical conductivity dramatically increases at THz leading to the possibility of electrical control of THz absorption. Moreover, by combining graphene layers with other passive structures augmenting the electric field intensity in the graphene, the control over THz waves can be greatly enhanced. By employing this approach THz electro-absorption modulators exhibiting better modulation-depth versus insertion-loss tradeoff than the prior art are demonstrated. These devices can be employed as the building blocks for novel THz systems; for instance a prototype single-detector THz camera was developed employing graphene electro-absorption modulator arrays.;But 2DEG systems exhibit further interesting properties which may be exploitable in the THz range such as collective electron transport, i.e. electron-plasma waves, whose group-velocity can be more than one order of magnitude larger than the electron-drift velocity. Based on this phenomenon, novel device concepts for THz detectors and amplifiers are proposed. These devices, named RTD-gated plasma wave HEMTs promise operation at frequencies 1 THz, which has been shown to be very difficult to obtain in conventional high-speed transistors.
机译:太赫兹(THz)技术在包括医学,通信,安全等在内的人类努力的许多不同领域中都有广阔的应用前景,最近,太赫兹(THz)技术已成为科学研究中非常活跃的领域。几十年来,通常定义在0.3-30 THz范围内的THz频带是电磁频谱中探索最少的区域之一,这主要是由于缺乏可控的方式来响应这些频率的材料和设备。这项工作提出了对可调二维电子气(2DEG)系统的研究,以及如何利用其独特的物理特性来开发新颖的高性能有源THz器件和系统。首先,一类新型的高效THz可重构器件提出了基于石墨烯的石墨烯并进行了实验证明。通过使用本质上为2D半导体的石墨烯作为活性材料,具有前所未有的自由度,低成本和易于制造的器件设计成为可能,从而在太赫兹波的可控性方面导致了相对于现有技术的实质性改进。尽管在红外/可见光范围内,石墨烯的光吸收率仅为百分之几且几乎不可控制,但其光导率在THz时会急剧增加,从而有可能对THz吸收进行电控。此外,通过将石墨烯层与其他增强石墨烯中电场强度的无源结构结合,可以大大增强对THz波的控制。通过采用这种方法,证明了与现有技术相比,展现出更好的调制深度与插入损耗折衷的太赫兹电吸收调制器。这些设备可以用作新型太赫兹系统的基础。例如,使用石墨烯电吸收调制器阵列开发了原型单探测器太赫兹相机。但是2DEG系统还具有其他有趣的特性,可在太赫兹范围内被利用,例如集体电子传输,即电子等离子波,其基团速度可以比电子漂移速度大一个数量级。基于这种现象,提出了用于太赫兹检测器和放大器的新颖设备概念。这些被称为RTD门控等离子体波HEMT的设备有望在 1 THz的频率下工作,这已证明在常规高速晶体管中很难获得。

著录项

  • 作者

    Sensale Rodriguez, Berardi.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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