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  4. An Ultralow-Power Triaxial MEMS Accelerometer With High-Voltage Biasing and Electrostatic Mismatch Compensation
 
research article

An Ultralow-Power Triaxial MEMS Accelerometer With High-Voltage Biasing and Electrostatic Mismatch Compensation

Peng, Yimai
•
Jeong, Seokhyeon
•
Choo, Kyojin  
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January 15, 2024
Ieee Journal Of Solid-State Circuits

This article presents a triaxial micro electromechani-cal system (MEMS) capacitive accelerometer using a high-voltage biasing technique to achieve high resolution with ultralow power. The accelerometer system generates a differential pair of high voltages to bias the MEMS structure, raising the MEMS signal substantially above the noise floor of the analog front-end(AFE) circuits. With the consequent increased signal-to-noiseratio (SNR), the proposed accelerometer system eliminates the need for a power-hungry low-noise amplifier (LNA) and signal chopping which significantly improves the power-noise trade off found in conventionally biased MEMS accelerometers. Moreover, by fine-tuning the bias voltages, the proposed method cancels the electrostatic mismatch in the MEMS due to process variation and ensures robust operation. The proposed accelerometer is composed of one integrated MEMS-CMOS chip and one CMOS-only chip. In post fabrication testing, it achieves a 121-mu g/root Hz input-referred noise floor with +/- 1.5-g dynamic range,<1%linearity error, and 184-nW per-axis power (including high-voltage bias generation). Compared to prior art, the design achieves a 10.3xFoM improvement in both power and noise specifications.

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Type
research article
DOI
10.1109/JSSC.2024.3349861
Web of Science ID

WOS:001166464200001

Author(s)
Peng, Yimai
Jeong, Seokhyeon
Choo, Kyojin  
Kim, Yejoong
Chen, Li-Yu
Rothe, Rohit
Xu, Li
Gurin, Ilya
Oliaei, Omid
Thompson, Matthew J.
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Date Issued

2024-01-15

Publisher

Ieee-Inst Electrical Electronics Engineers Inc

Published in
Ieee Journal Of Solid-State Circuits
Subjects

Technology

•

Accelerometer

•

Analog-Front-End (Afe)

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Electrostatic Force

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High-Voltage Generation

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Low-Noise Amplifier (Lna)

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Low-Power Circuit

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Microelectromechanical System (Mems)

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
MSIC-LAB  
Available on Infoscience
March 18, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/206459
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