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High gain low power operational amplifier design and compensation techniques.

机译:高增益低功率运算放大器的设计和补偿技术。

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摘要

This dissertation discusses and compares the existing compensation methods for operational amplifiers. It explores a method to stabilize the op amps without sacrificing bandwidth to the same degree that commonly used methods do. A creative design methodology combining intuition, mathematical analysis, and mixed level simulation is explored for the new compensation scheme. The mixed level approach, associating system level simulation for most circuits along with device level simulation for some critical analog circuit paths; is presented to verify the behavior of new design concepts in an effective way. This approach also provides sufficient accuracy to predict the circuit performance realistically. The new feedforward compensation method overcomes the serious drawback of the widely used pole splitting method, which greatly narrows the bandwidth. It can improve the phase margin as well as optimize the bandwidth of the op amp. The proposed feedforward compensation method can be easily applied to the popular two gain stage op amp architectures with very little alteration.; MOS devices are used in the weak inversion region or the subthreshold inversion region to minimize dc source power. A feasible configuration for high gain, low power op amp design utilizing subthreshold operation along with active operation is proposed. This op amp uses composite cascode connections for the differential input stage, a common source second stage, and a current mirror. A prototype of the op amp was fabricated in a 0.25 mum CMOS process. The proposed op amp produces an open loop gain above one million with low power consumption around 110 muW and shows a favorable slew rate and GBW product compared to other amplifiers driving large capacitive loads. In addition, the composite cascode amplifier requires a compensation capacitor of only 3.5 pF which allows a very small op amp cell. This design is intended for applications where simplicity of layout, small cell size, and low power are important. The open loop gain of this design is comparable to bipolar op amps and exceeds all known reported CMOS designs using the classic Widlar architecture. The fabricated op amp test results show that the BSIM3 model in CADENCE Spectre Spice Simulation matches closely to the experimental results in spite of the low current weak inversion operation of the composite cascode output device and thus provide confidence in the simulation for other similar designs. While facing the challenge of measuring the op amp open loop characteristics at decreased power supply voltages, a few viable techniques were developed to measure the op amp open loop parameters using typically available bench test equipment.
机译:本文讨论并比较了现有的运算放大器补偿方法。它探索了一种在不牺牲带宽的情况下稳定运放的方法,而该方法不会牺牲常用方法的带宽。对于新的补偿方案,探索了一种结合直觉,数学分析和混合水平仿真的创新设计方法。混合级方法,将大多数电路的系统级仿真与一些关键模拟电路路径的设备级仿真相关联;提出以有效方式验证新设计概念的行为。这种方法还提供了足够的精度,可以实际地预测电路性能。新的前馈补偿方法克服了广泛使用的极点分裂方法的严重缺点,该方法极大地缩小了带宽。它可以改善相位裕度并优化运算放大器的带宽。所提出的前馈补偿方法可以很容易地应用到流行的两级增益运算放大器架构,而只需很少的改动即可。 MOS器件用于弱反转区域或亚阈值反转区域,以最大程度地减小直流电源功率。提出了一种利用亚阈值操作和有源操作进行高增益,低功耗运算放大器设计的可行配置。该运算放大器将复合共源共栅连接用于差分输入级,公共源第二级和电流镜。该运算放大器的原型是在0.25微米CMOS工艺中制造的。与驱动较大容性负载的其他放大器相比,拟议的运算放大器可产生超过100万的开环增益,功耗低至110μW,并且显示出良好的压摆率和GBW乘积。此外,复合共源共栅放大器需要仅3.5 pF的补偿电容器,从而可以实现非常小的运算放大器单元。该设计适用于需要简化布局,小单元尺寸和低功耗的应用。该设计的开环增益可与双极性运算放大器媲美,并且超过了使用经典Widlar架构的所有已知报道的CMOS设计。制成的运算放大器测试结果表明,尽管复合共源共栅输出设备的低电流弱反相操作,但CADENCE Spectre Spice Simulation中的BSIM3模型与实验结果紧密匹配,从而为其他类似设计的仿真提供了信心。在面临在降低的电源电压下测量运算放大器开环特性的挑战的同时,人们开发了一些可行的技术来使用典型的台式测试设备来测量运算放大器的开环参数。

著录项

  • 作者

    Li, Lisha.;

  • 作者单位

    Brigham Young University.;

  • 授予单位 Brigham Young University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 121 p.
  • 总页数 121
  • 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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