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Embracing local variability to enable a robust high-gain positive-feedback amplifier: Design methodology and implementation

机译:拥抱局部变化能够实现强大的高增益正反馈放大器:设计方法和实施

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A novel digital calibration technique based on component redundancy and random diversity (CRRD) is used to enable robust high-gain positive-feedback (PF) amplifiers. Gain enhancement is achieved through output conductance cancellation which requires accurate calibration across process, voltage, and temperature. CRRD employs a set of redundant elements intentionally exhibiting high local variability, and the subset of the elements that best cancels amplifier's output conductance is employed. We develop a novel design methodology to rigorously predict: (1) how to partition the full configuration range between a fixed load and a tunable load, and (2) how, for a given partition, to size the tunable load elements. We prove that having a sizable coarse load is essential for reaching optimality. We apply the developed theory to the design of a 0.18μm CMOS test-chip implementing a 6×10 array of high-gain PF amplifiers based on CRRD. We demonstrate that the use of CRRD allows only linear increase of the array size, and its associated capacitance, with dB gain improvement, in contrast to exponential increase in earlier designs. Gains of ninety amplifiers from three different dies were measured and exceeded 64dB for 95% of the samples, up from an intrinsic gain of 28.5dB. A gain-bandwidth product of 186MHz was measured while consuming 65μA from a 1.8V supply.
机译:一种基于组件冗余和随机分集(CRRD)的新型数字校准技术用于实现鲁棒的高增益正反馈(PF)放大器。通过输出电导消除实现增强,需要在过程,电压和温度上准确校准。 CRRD采用一组故意表现出高局部可变性的冗余元素,并且采用最佳取消放大器输出电导的元件的子集。我们开发一种小说设计方法,以严格预测:(1)如何在固定负载和可调谐负载之间分区完整配置范围,以及(2)如何为给定分区进行调谐负载元素。我们证明具有相当大的粗载荷对于达到最优性至关重要。我们将开发的理论应用于0.18μ M CMOS测试芯片的设计,实现了6×基于CRRD的高增益PF放大器10阵列。我们证明CRRD的使用允许仅具有DB增益改善的阵列尺寸的线性增加,以及其相关电容,与早期设计的指数增加相比。测量来自三种不同模具的九十放大器的增益,并超过64dB的95%样品,从内在增益为28.5dB。在消耗65&#x03bc的同时测量186MHz的增益带宽乘积; a从1.8V供电。

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