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Successive Approximation Analog-to-Digital Converters: Improving Power Efficiency and Conversion Speed

机译:逐次逼近模数转换器:提高电源效率和转换速度

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Successive-approximation register analog-to-digital converters (SAR ADCs) have been around for a long time, but they have recently received a lot of attention due to the advantages of process scaling and recent architectural innovations, leading to improvements in power efficiency and conversion speed. For illustration, Figure 1 shows a collection of data converters in terms of energy per conversion (which is the power consumption P divided by the sampling rate fs) and accuracy, expressed as signal-to-noise-and-distortion ratio (SNDR), based on data from [1]. As one can see, SAR ADCs are very power efficient compared to other architectures for medium accuracies between 40 and 70 dB of SNDR. In terms of speed, SAR ADCs have managed to reach sampling rates of up to 90 GS/s when time interleaved [2]. One of the reasons SAR ADCs are doing so well is because they use simple analog and digital circuits that tend to scale well and benefit from newer process technologies. Moreover, the simple structure often allows operation at reduced supply levels, which can save additional power. In this article, we will discuss the basic design aspects of SAR ADCs and give a short overview of state-of-the-art designs and future trends.
机译:逐次逼近寄存器模数转换器(SAR ADC)已经存在很长时间了,但是由于过程缩放和最新架构创新的优势,它们近来受到了广泛关注,从而提高了功率效率和转换速度。为了说明起见,图1展示了数据转换器的集合,以每次转换的能量(功耗P除以采样率fs)和精度表示,表示为信噪比(SNDR),基于[1]的数据。可以看到,与其他架构相比,SAR ADC在SNDR 40至70 dB之间的中等精度方面具有很高的功率效率。在速度方面,当时间交错时,SAR ADC设法达到高达90 GS / s的采样率[2]。 SAR ADC之所以如此出色,其原因之一是因为它们使用简单的模拟和数字电路,这些电路往往可以很好地扩展并从更新的处理技术中受益。此外,简单的结构通常允许在降低的电源水平下运行,从而可以节省额外的功率。在本文中,我们将讨论SAR ADC的基本设计方面,并简要概述最新设计和未来趋势。

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