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Low-voltage low-power analog circuit techniques using floating-gate MOS transistors.

机译:使用浮栅MOS晶体管的低压低功耗模拟电路技术。

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摘要

This research focuses on advanced analog circuit design for low-voltage and low-power applications based on several new techniques using conventional and floating-gate MOS transistors with standard CMOS process technologies.; As a conventional approach which uses standard MOS transistors, a low-voltage current-mode bandgap reference operated with sub-I V supply is proposed. Also, a new class of low-power analog filters based on charge-transfer amplifiers is introduced. The proposed charge-transfer analog filter can achieve extremely low-power operation.; Another possible approach to achieve low-voltage and low-power operation is to use floating-gate MOS transistors. Analog floating-gate approaches provide many useful options for low-voltage, low-power, and high-precision circuit design. A floating-gate quantized adaptation (FGQA) technique was proposed to implement high-precision analog circuits by removing analog mismatch errors including process variations. As a practical example of the FGQA technique, an array of 7 adapted current sources was implemented. Experiments show that the output currents of the proposed current sources matched to within 0.1%, and the adapted currents show significantly improved accuracy compared to the mismatch error of 5 without adaptation. The accuracy can be improved further by extending the adaptation time.; Recently, a new technique using quasi-floating gate (QFG) MOS transistors has been introduced to simplify initializing floating-gate charge. QFG techniques which can control the initial charge of floating-gate MOS transistors by using quasi-infinite resistors (QIRs) were analyzed to characterize error terms and limitations. Also, several useful quasi-floating gate application circuits, such as QFG multiple-input translinear element circuits, QFG multiple-input CMOS log-domain filters, QFG low-voltage fully-differential amplifiers with QFG common-mode feedback, and a QFG digital-to-analog converter, were demonstrated. Experiments of selected QFG circuits showed very long do settling behavior with large do offset. The settling time is reduced when the QFG circuit uses ac inputs or closed-loop structures. Because QFG circuits are based on capacitor coupling, the do offset occurred by QIRs can be a minor problem.
机译:这项研究的重点是基于几种新技术的低电压和低功率应用的高级模拟电路设计,这些新技术使用常规和浮栅MOS晶体管以及标准CMOS工艺技术。作为使用标准MOS晶体管的常规方法,提出了使用亚IV电源工作的低压电流模式带隙基准。此外,还介绍了基于电荷转移放大器的新型低功耗模拟滤波器。提出的电荷转移模拟滤波器可以实现极低的功耗。实现低电压和低功率操作的另一种可能方法是使用浮栅MOS晶体管。模拟浮栅方法为低压,低功耗和高精度电路设计提供了许多有用的选择。提出了一种浮动门量化自适应(FGQA)技术,通过消除包括过程变化在内的模拟失配误差来实现高精度模拟电路。作为FGQA技术的一个实际示例,实现了由7种适配电流源组成的阵列。实验表明,所提出的电流源的输出电流匹配在0.1%的范围内,并且与不进行匹配的5个失配误差相比,自适应电流显示出了显着提高的精度。通过延长适应时间可以进一步提高精度。最近,已经引入了一种使用准浮栅(QFG)MOS晶体管的新技术,以简化浮栅电荷的初始化。分析了可以通过使用准无限电阻(QIR)控制浮栅MOS晶体管的初始电荷的QFG技术,以表征误差项和限制。另外,还有几种有用的准浮栅应用电路,例如QFG多输入跨线性元件电路,QFG多输入CMOS对数域滤波器,具有QFG共模反馈的QFG低压全差分放大器和QFG数字-模拟转换器,进行了演示。所选QFG电路的实验表明,do稳定时间长,do失调较大。当QFG电路使用交流输入或闭环结构时,建立时间会减少。由于QFG电路基于电容器耦合,因此QIR产生的do偏移可能是一个小问题。

著录项

  • 作者

    Seo, Inchang.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 164 p.
  • 总页数 164
  • 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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