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Hollistic Approaches to Design High Speed Electronic Circuits

机译:设计高速电子电路的整体方法

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摘要

The most valuable asset we are given is time. This is perhaps the main motivation behind the desire of human being to minimize the time that it takes for a certain task to be completed. Starting from the middle of 20 th century, electronic components brought the hope to perform certain tasks faster than human brain or other existing techniques. Today, we live in an era that billions of computations are performed in less than a second and enormous amount of data can be transmitted between people, thanks to the electronic circuits.;Operation frequency and computation time are the measures of speed in modern electronics. Therefore, we like to find new approaches to push the limits of operation with respect to these metrics. In this thesis, we introduce new design approaches of high speed electronic circuits. The systematic design theory in each chapter is verified by measurement results and compared with simulations. Chapter 1 overviews the advances in each domain and highlights the design challenges ahead of speed enhancement.;In chapters 2 and 3, a new harmonic power maximization theory is proposed which leads to the design of high power active frequency multipliers with record performance. It is shown that by characterizing the nonlinear behavior of a transistor or any nonlinear element, circuit embedding can be selected to maximize the power at any desired harmonic. By exploiting this nonlinear model, the design of millimeter wave and sub-millimeter wave circuits becomes more power efficient and higher operation frequencies can be reached compared to linear design approaches.;In Chapter 4, it is shown how emerging technologies such as spin-based devices can outperform the existing technologies in terms of computation time. Essentially, a systematic design of pattern recognition circuits using spin-based devices is provided which is scalable and area efficient. It is shown that by combining circuit design techniques with applied physics principles, these emerging devices improve the existing technology in terms of operation speed, area, and computation burden.;Chapter 5 and 6 highlight two collaboration projects of the author which demonstrate the first terahertz phase-locked transmitter and the first integrated negative inductance circuits. The implementation of these systems bridge the gap between other research areas such as optics and the integrated circuit technology. The findings of the thesis are concluded in Chapter 7.
机译:我们得到的最有价值的资产是时间。这也许是人类希望将完成某项任务所需的时间减至最少的主要动机。从20世纪中叶开始,电子组件带来了希望比人脑或其他现有技术更快地执行某些任务的希望。如今,我们生活在一个这样的时代:借助电子电路,可以在不到一秒的时间内执行数十亿次计算,并且可以在人与人之间传输大量数据。操作频率和计算时间是现代电子技术中速度的度量。因此,我们希望找到新的方法来针对这些指标提高操作极限。本文介绍了高速电子电路的新设计方法。每章中的系统设计理论均通过测量结果进行了验证,并与仿真进行了比较。第1章概述了各个领域的进展,并突出了提高速度之前的设计挑战。在第2章和第3章中,提出了一种新的谐波功率最大化理论,该理论导致了具有创纪录性能的高功率有源倍频器的设计。结果表明,通过表征晶体管或任何非线性元件的非线性行为,可以选择电路嵌入以最大化任何所需谐波下的功率。通过利用这种非线性模型,与线性设计方法相比,毫米波和亚毫米波电路的设计变得更加节能,并且可以达到更高的工作频率。在第四章​​中,我们展示了诸如基于自旋等新兴技术。设备在计算时间方面可以胜过现有技术。本质上,提供了使用基于自旋的设备的模式识别电路的系统设计,该系统设计是可扩展的且面积有效的。结果表明,通过将电路设计技术与应用物理原理相结合,这些新兴设备在操作速度,面积和计算负担方面改进了现有技术。第五章和第六章重点介绍了作者的两个合作项目,它们演示了第一个太赫兹锁相发送器和第一个集成的负电感电路。这些系统的实施弥合了光学和集成电路技术等其他研究领域之间的鸿沟。第七章总结了论文的研究结果。

著录项

  • 作者

    Aghasi, Hamidreza.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Electrical engineering.;Electromagnetics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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