TY - GEN
T1 - 27.1 A 250kHz-BW 93dB-SNDR 4th-Order Noise-Shaping SAR Using Capacitor Stacking and Dynamic Buffering
AU - Liu, Jiaxin
AU - Li, Dengquan
AU - Zhong, Yi
AU - Tang, Xiyuan
AU - Sun, Nan
N1 - Publisher Copyright:
© 2021 IEEE.
PY - 2021/2/13
Y1 - 2021/2/13
N2 - The noise-shaping (NS) SAR is an emerging hybrid architecture that aims to combine the benefits of both SAR and \Delta \Sigma ADCs [1- 8]. The key in an NS SAR is the NS filter. As shown in Fig. 27.1.1, prior NS filter techniques can be classified into two types. The first way is to use a closed-loop amplifier-based integrator [1- 3]. With sufficient gain of the amplifier, this type of integrator can realize a sharp noise transfer function (NTF). However, the high-gain multi-stage amplifier produces large noise, is power-consuming and unfriendly to technology scaling [2, 3]. The second way is to use passive charge sharing to perform error feedback [4- 6] or integration [7, 8]. The fully passive filter avoids using closed-loop amplifiers, but it has signal attenuation issue and the resulting NTF is mild [4]. Also, due to the lack of effective gain, it suffers from large comparator noise. To improve the NTF and noise suppression capability, some works place an open-loop amplifier before the passive filter [5- 7], or implement a passive gain after it [8]. However, the gain of an open-loop amplifier is sensitive to PVT variations, and the passive gain method suffers from severe parasitic effects when a large gain is required.
AB - The noise-shaping (NS) SAR is an emerging hybrid architecture that aims to combine the benefits of both SAR and \Delta \Sigma ADCs [1- 8]. The key in an NS SAR is the NS filter. As shown in Fig. 27.1.1, prior NS filter techniques can be classified into two types. The first way is to use a closed-loop amplifier-based integrator [1- 3]. With sufficient gain of the amplifier, this type of integrator can realize a sharp noise transfer function (NTF). However, the high-gain multi-stage amplifier produces large noise, is power-consuming and unfriendly to technology scaling [2, 3]. The second way is to use passive charge sharing to perform error feedback [4- 6] or integration [7, 8]. The fully passive filter avoids using closed-loop amplifiers, but it has signal attenuation issue and the resulting NTF is mild [4]. Also, due to the lack of effective gain, it suffers from large comparator noise. To improve the NTF and noise suppression capability, some works place an open-loop amplifier before the passive filter [5- 7], or implement a passive gain after it [8]. However, the gain of an open-loop amplifier is sensitive to PVT variations, and the passive gain method suffers from severe parasitic effects when a large gain is required.
UR - https://www.scopus.com/pages/publications/85102389380
U2 - 10.1109/ISSCC42613.2021.9366008
DO - 10.1109/ISSCC42613.2021.9366008
M3 - Conference contribution
AN - SCOPUS:85102389380
T3 - Digest of Technical Papers - IEEE International Solid-State Circuits Conference
SP - 369
EP - 371
BT - 2021 IEEE International Solid-State Circuits Conference - Digest of Technical Papers, ISSCC 2021
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2021 IEEE International Solid-State Circuits Conference, ISSCC 2021
Y2 - 13 February 2021 through 22 February 2021
ER -