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Exploiting floating-gate transistor properties in analog and mixed-signal circuit design.

机译:在模拟和混合信号电路设计中开发浮栅晶体管特性。

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摘要

With the downscaling trend in CMOS technology, it has been possible to utilize the advantages of high element densities in VLSI circuits and systems. This trend has readily allowed digital circuits to predominate VLSI implementations due to their ease of scaling. However, high element density in integrated circuit technology has also entailed a decrease in the power consumption per functional circuit cell for the use of low-power and reconfigurable systems in portable equipment.; Analog circuits have the advantage over digital circuits in designing low-power and compact VLSI circuits for signal processing systems. Also, analog circuits have been employed to utilize the wide dynamic range of the analog domain to meet the stringent signal-to-noise-and-distortion requirements of some signal processing applications. However, the imperfections and mismatches of CMOS devices can easily deteriorate the performance of analog circuits when they are used to realize precision and highly linear elements in the analog domain. This is mainly due to the lack of tunability of the analog circuits that necessitates the use of special trimming or layout techniques.; These problems can be alleviated by making use of the analog storage and capacitive coupling capabilities of floating-gate transistors. In this research, tunable resistive elements and analog storages are built using floating-gate transistors to be incorporated into signal processing applications. Tunable linearized resistors are designed and implemented in CMOS technology, and are employed in building a highly linear amplifier, a transconductance multiplier, and a binary-weighted resistor digital-to-analog converter. Moreover, a tunable voltage reference is designed by utilizing the analog storage feature of the floating-gate transistor. This voltage reference is used to build low-power, compact, and tunable/reconfigurable voltage-output digital-to-analog converter and distributed arithmetic architecture.
机译:随着CMOS技术的缩小趋势,已经有可能在VLSI电路和系统中利用高元件密度的优点。由于易于扩展,这种趋势很容易使数字电路在VLSI实现中占主导地位。然而,集成电路技术中的高元件密度还导致在便携式设备中使用低功率和可重构系统时每个功能电路单元的功耗降低。在设计用于信号处理系统的低功耗和紧凑型VLSI电路时,模拟电路具有优于数字电路的优势。而且,已经采用模拟电路来利用模拟域的宽动态范围,以满足某些信号处理应用中严格的信噪比和失真要求。然而,当CMOS器件的缺陷和失配用于在模拟域中实现精密和高度线性的元件时,它们很容易使模拟电路的性能下降。这主要是由于缺乏模拟电路的可调性,因此必须使用特殊的修整或布局技术。这些问题可以通过使用浮栅晶体管的模拟存储和电容耦合功能来缓解。在这项研究中,使用浮栅晶体管构建可调电阻元件和模拟存储器,以将其整合到信号处理应用中。可调线性电阻器采用CMOS技术设计和实现,并用于构建高度线性的放大器,跨导乘法器和二进制加权电阻器数模转换器。此外,通过利用浮栅晶体管的模拟存储功能来设计可调参考电压。该基准电压源用于构建低功耗,紧凑且可调/可重新配置的电压输出数模转换器和分布式算术架构。

著录项

  • 作者

    Ozalevli, Erhan.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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