Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback

This paper presents the design, simulation, fabrication and experiments of a micromachined z-axis tunneling magnetoresistive accelerometer with electrostatic force feedback. The tunneling magnetoresistive accelerometer consists of two upper differential tunneling magnetoresistive sensors, a middle p...

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Main Authors: Bo Yang, Binlong Wang, Hongyu Yan, Xiaoyong Gao
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/10/2/158
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spelling doaj-66c3d7a576574e309f43b722886de8c92020-11-25T01:32:50ZengMDPI AGMicromachines2072-666X2019-02-0110215810.3390/mi10020158mi10020158Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force FeedbackBo Yang0Binlong Wang1Hongyu Yan2Xiaoyong Gao3School of Instrument Science and Engineering, Southeast University, Nanjing 210096, ChinaSchool of Instrument Science and Engineering, Southeast University, Nanjing 210096, ChinaSchool of Instrument Science and Engineering, Southeast University, Nanjing 210096, ChinaSchool of Instrument Science and Engineering, Southeast University, Nanjing 210096, ChinaThis paper presents the design, simulation, fabrication and experiments of a micromachined z-axis tunneling magnetoresistive accelerometer with electrostatic force feedback. The tunneling magnetoresistive accelerometer consists of two upper differential tunneling magnetoresistive sensors, a middle plane main structure with permanent magnetic films and lower electrostatic feedback electrodes. A pair of lever-driven differential proof masses in the middle plane main structure is used for sensitiveness to acceleration and closed-loop feedback control. The tunneling magnetoresistive effect with high sensitivity is adopted to measure magnetic field variation caused by input acceleration. The structural mode and mass ratio between inner and outer proof masses are optimized by the Ansys simulation. Simultaneously, the magnetic field characteristic simulation is implemented to analyze the effect of the location of tunneling magnetoresistive sensors, magnetic field intensity, and the dimension of permanent magnetic film on magnetic field sensitivity, which is beneficial for the achievement of maximum sensitivity. The micromachined z-axis tunneling magnetoresistive accelerometer fabricated by the standard deep dry silicon on glass (DDSOG) process has a device dimension of 6400 &#956;m (length) &#215; 6400 &#956;m (width) &#215; 120 &#956;m (height). The experimental results demonstrate the prototype has a maximal sensitivity of 8.85 mV/g along the z-axis sensitive direction under the gap of 1 mm. Simultaneously, Allan variance analysis illustrate that a noise floor of 86.2 &#956;g/Hz<sup>0.5</sup> is implemented in the z-axis tunneling magnetoresistive accelerometer.https://www.mdpi.com/2072-666X/10/2/158accelerometertunnel magnetoresistive effectelectrostatic force feedback
collection DOAJ
language English
format Article
sources DOAJ
author Bo Yang
Binlong Wang
Hongyu Yan
Xiaoyong Gao
spellingShingle Bo Yang
Binlong Wang
Hongyu Yan
Xiaoyong Gao
Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
Micromachines
accelerometer
tunnel magnetoresistive effect
electrostatic force feedback
author_facet Bo Yang
Binlong Wang
Hongyu Yan
Xiaoyong Gao
author_sort Bo Yang
title Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
title_short Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
title_full Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
title_fullStr Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
title_full_unstemmed Design of a Micromachined Z-axis Tunneling Magnetoresistive Accelerometer with Electrostatic Force Feedback
title_sort design of a micromachined z-axis tunneling magnetoresistive accelerometer with electrostatic force feedback
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2019-02-01
description This paper presents the design, simulation, fabrication and experiments of a micromachined z-axis tunneling magnetoresistive accelerometer with electrostatic force feedback. The tunneling magnetoresistive accelerometer consists of two upper differential tunneling magnetoresistive sensors, a middle plane main structure with permanent magnetic films and lower electrostatic feedback electrodes. A pair of lever-driven differential proof masses in the middle plane main structure is used for sensitiveness to acceleration and closed-loop feedback control. The tunneling magnetoresistive effect with high sensitivity is adopted to measure magnetic field variation caused by input acceleration. The structural mode and mass ratio between inner and outer proof masses are optimized by the Ansys simulation. Simultaneously, the magnetic field characteristic simulation is implemented to analyze the effect of the location of tunneling magnetoresistive sensors, magnetic field intensity, and the dimension of permanent magnetic film on magnetic field sensitivity, which is beneficial for the achievement of maximum sensitivity. The micromachined z-axis tunneling magnetoresistive accelerometer fabricated by the standard deep dry silicon on glass (DDSOG) process has a device dimension of 6400 &#956;m (length) &#215; 6400 &#956;m (width) &#215; 120 &#956;m (height). The experimental results demonstrate the prototype has a maximal sensitivity of 8.85 mV/g along the z-axis sensitive direction under the gap of 1 mm. Simultaneously, Allan variance analysis illustrate that a noise floor of 86.2 &#956;g/Hz<sup>0.5</sup> is implemented in the z-axis tunneling magnetoresistive accelerometer.
topic accelerometer
tunnel magnetoresistive effect
electrostatic force feedback
url https://www.mdpi.com/2072-666X/10/2/158
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AT binlongwang designofamicromachinedzaxistunnelingmagnetoresistiveaccelerometerwithelectrostaticforcefeedback
AT hongyuyan designofamicromachinedzaxistunnelingmagnetoresistiveaccelerometerwithelectrostaticforcefeedback
AT xiaoyonggao designofamicromachinedzaxistunnelingmagnetoresistiveaccelerometerwithelectrostaticforcefeedback
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