采用线性化动态放大器和输入缓冲器的22nm FDSOI节能管道sar ADC

IF 2.4 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE open journal of circuits and systems Pub Date : 2024-12-03 DOI:10.1109/OJCAS.2024.3509746
Bangda Yang;Trevor Caldwell;Anthony Chan Carusone
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引用次数: 0

摘要

近年来,动态放大器(DA)由于其基于集成的高能效解决方案而成为静态电流闭环运算跨导放大器(OTA)的热门替代方案,但其主要限制是其线性性能。我们提出了一种通过模拟技术实现- 52 dB总谐波失真(THD)的DA,通过这种模拟技术,输入晶体管中的扩展和压缩非线性相互抵消。采用GlobalFoundries的22nm完全耗尽绝缘体上硅(FDSOI)工艺,设计并制造了一种在输入缓冲器和第一残留放大器(RA)级均采用线性化DA的管道sar模数转换器(ADC)。测量结果表明,该ADC在920 MS/s下的信噪比(SNDR)为37 dB,消耗的总功率为1.8mW, Walden form (FOMW)为34.9 fJ/conv。使用输入缓冲器,实现的FOMW为68.4 fJ/conv。在最佳偏置下,线性化技术提供了8db的SNDR改进,而功率开销约为5%,可以忽略不计。一般来说,预计8 dB SNDR的改进将需要限制失配设计(Walden FOM)的2.5倍功耗或限制噪声设计(Schreier FOM)的6.3倍功耗。
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An Energy-Efficient Pipeline-SAR ADC Using Linearized Dynamic Amplifiers and Input Buffer in 22nm FDSOI
Recently, dynamic amplifier (DA) has emerged as a popular alternative to static current closed-loop operational transconductance amplifier (OTA) due to their highly power-efficient integration-based settling, with the main limitation being their linearity performance. We present a DA that achieves −52 dB in total harmonic distortion (THD) through an analog technique by which the expanding and compressing nonlinearities in the input transistors cancel one another. A pipeline-SAR analog-to-digital converter (ADC) incorporating the linearized DA in both the input buffer and the first residue amplifier (RA) stage was designed and fabricated using the GlobalFoundries 22nm fully depleted silicon-on-insulator (FDSOI) process. Measurements showed the ADC achieved a signal-to-noise-distortion ratio (SNDR) of 37 dB at 920 MS/s consuming a total power of 1.8mW for a Walden FOM (FOMW) of 34.9 fJ/conv. With the input buffer, the achieved FOMW is 68.4 fJ/conv. The linearization technique provided a 8 dB improvement in SNDR at its optimal biasing with a negligible power overhead of approximately 5%. In general, it is expected that an 8 dB SNDR improvement would require 2.5 times the power consumption for a mismatch-limited design (Walden FOM) or 6.3 times the power for a noise-limited design (Schreier FOM).
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