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28.4 A 12b 330MS/s pipelined-SAR ADC with PVT-stabilized dynamic amplifier achieving <1dB SNDR variation

机译:28.4具有PVT稳定的动态放大器的12b 330MS / s流水线SAR ADC实现SNDR变化小于1dB

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In high-speed pipeline or pipelined-SAR ADCs, conventional opamp-based residue amplifiers consume significant amounts of power due to stringent settling speed and accuracy requirements. A recent alternative approach employs a dynamic amplifier [1] to achieve a more efficient form of settling, stemming from the fact that slewing is more power efficient than exponential settling (Fig. 28.4.1). For example, at 6b accuracy, the setting time of a dynamic amplifier is about a quarter of that of a conventional opamp (non-slewing) with the same bias current. However, the efficiency of the dynamic amplifier is accompanied by a few undesirable features such as ill-defined gain, and PVT and clock jitter sensitivity. In particular, as the voltage gain of a dynamic amplifier relates to the non-constant transconductance, load capacitance and slewing time (gmA, CLA and tA, respectively, in Fig. 28.4.1), it can drift dramatically with PVT variations. One way to compensate for gain instability is to employ continuous background calibration. However, most of these calibrations require some constraints on the statistical property of the input signal and suffer from long convergence time and design complexity. This paper presents a simple analog approach to effectively stabilize the voltage gain over PVT variations.
机译:在高速流水线或流水线SAR ADC中,由于严格的建立速度和精度要求,传统的基于运算放大器的余数放大器消耗大量功率。最近的一种替代方法是使用动态放大器[1]来实现更有效的稳定形式,这是由于回转比指数稳定具有更高的功率效率(图28.4.1)。例如,在6b精度下,动态放大器的设置时间大约是具有相同偏置电流的传统运算放大器(无回转)的设置时间的四分之一。但是,动态放大器的效率伴随着一些不良特性,例如增益不确定,PVT和时钟抖动灵敏度。特别是,由于动态放大器的电压增益与非恒定跨导,负载电容和转换时间(分别在图28.4.1中的gmA,CLA和tA)有关,因此随着PVT的变化,它会发生剧烈漂移。补偿增益不稳定性的一种方法是采用连续背景校准。但是,大多数这些校准都需要对输入信号的统计特性进行一些约束,并且会导致收敛时间长和设计复杂。本文提出了一种简单的模拟方法,可以有效地稳定PVT变化时的电压增益。

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