Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC
High-precision microelectromechanical system (MEMS) accelerometers have wide application in the military and civil fields. The closed-loop microaccelerometer interface circuit with switched capacitor topology has a high signal-to-noise ratio, wide bandwidth, good linearity, and easy implementation i...
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doaj-a65102e4fd814ffba341f5a9d46b545a2020-12-19T00:04:47ZengMDPI AGSensors1424-82202020-12-01207280728010.3390/s20247280Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASICXiangyu Li0Yangong Zheng1Xiangyan Kong2Yupeng Liu3Danling Tang4Faculty of Electrical Engineering and Computer Science, Ningbo University, Ningbo 315211, ChinaFaculty of Electrical Engineering and Computer Science, Ningbo University, Ningbo 315211, ChinaFaculty of Electrical Engineering and Computer Science, Ningbo University, Ningbo 315211, ChinaSouthern Marine Science and Engineering Guangdong Laboratory, Guangdong Key Laboratory of Ocean Remote Sensing (LORS), South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou 510301, ChinaSouthern Marine Science and Engineering Guangdong Laboratory, Guangdong Key Laboratory of Ocean Remote Sensing (LORS), South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou 510301, ChinaHigh-precision microelectromechanical system (MEMS) accelerometers have wide application in the military and civil fields. The closed-loop microaccelerometer interface circuit with switched capacitor topology has a high signal-to-noise ratio, wide bandwidth, good linearity, and easy implementation in complementary metal oxide semiconductor (CMOS) process. Aiming at the urgent need for high-precision MEMS accelerometers in geophones, we carried out relevant research on high-performance closed-loop application specific integrated circuit (ASIC) chips. According to the characteristics of the performance parameters and output signal of MEMS accelerometers used in geophones, a high-precision closed-loop interface ASIC chip based on electrostatic time-multiplexing feedback technology and proportion integration differentiation (PID) feedback control technology was designed and implemented. The interface circuit consisted of a low-noise charge-sensitive amplifier (CSA), a sampling and holding circuit, and a PID feedback circuit. We analyzed and optimized the noise characteristics of the interface circuit and used a capacitance compensation array method to eliminate misalignment of the sensitive element. The correlated double sampling (CDS) technology was used to eliminate low-frequency noise and offset of the interface circuit. The layout design and engineering batch chip were fabricated by a standard 0.35 μm CMOS process. The active area of the chip was 3.2 mm × 3 mm. We tested the performance of the accelerometer system with the following conditions: power dissipation of 7.7 mW with a 5 V power supply and noise density less than 0.5 μg/Hz<sup>1/2</sup>. The accelerometers had a sensitivity of 1.2 V/g and an input range of ±1.2 g. The nonlinearity was 0.15%, and the bias instability was about 50 μg.https://www.mdpi.com/1424-8220/20/24/7280MEMS accelerometersinterface circuitPID feedbackclosed-loop |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiangyu Li Yangong Zheng Xiangyan Kong Yupeng Liu Danling Tang |
spellingShingle |
Xiangyu Li Yangong Zheng Xiangyan Kong Yupeng Liu Danling Tang Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC Sensors MEMS accelerometers interface circuit PID feedback closed-loop |
author_facet |
Xiangyu Li Yangong Zheng Xiangyan Kong Yupeng Liu Danling Tang |
author_sort |
Xiangyu Li |
title |
Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC |
title_short |
Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC |
title_full |
Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC |
title_fullStr |
Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC |
title_full_unstemmed |
Research on High-Resolution Miniaturized MEMS Accelerometer Interface ASIC |
title_sort |
research on high-resolution miniaturized mems accelerometer interface asic |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2020-12-01 |
description |
High-precision microelectromechanical system (MEMS) accelerometers have wide application in the military and civil fields. The closed-loop microaccelerometer interface circuit with switched capacitor topology has a high signal-to-noise ratio, wide bandwidth, good linearity, and easy implementation in complementary metal oxide semiconductor (CMOS) process. Aiming at the urgent need for high-precision MEMS accelerometers in geophones, we carried out relevant research on high-performance closed-loop application specific integrated circuit (ASIC) chips. According to the characteristics of the performance parameters and output signal of MEMS accelerometers used in geophones, a high-precision closed-loop interface ASIC chip based on electrostatic time-multiplexing feedback technology and proportion integration differentiation (PID) feedback control technology was designed and implemented. The interface circuit consisted of a low-noise charge-sensitive amplifier (CSA), a sampling and holding circuit, and a PID feedback circuit. We analyzed and optimized the noise characteristics of the interface circuit and used a capacitance compensation array method to eliminate misalignment of the sensitive element. The correlated double sampling (CDS) technology was used to eliminate low-frequency noise and offset of the interface circuit. The layout design and engineering batch chip were fabricated by a standard 0.35 μm CMOS process. The active area of the chip was 3.2 mm × 3 mm. We tested the performance of the accelerometer system with the following conditions: power dissipation of 7.7 mW with a 5 V power supply and noise density less than 0.5 μg/Hz<sup>1/2</sup>. The accelerometers had a sensitivity of 1.2 V/g and an input range of ±1.2 g. The nonlinearity was 0.15%, and the bias instability was about 50 μg. |
topic |
MEMS accelerometers interface circuit PID feedback closed-loop |
url |
https://www.mdpi.com/1424-8220/20/24/7280 |
work_keys_str_mv |
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