TY - JOUR
T1 - A High-Resolution and Large-Bandwidth Resonant Accelerometer With Thermal Boost Sensitivity
AU - Li, Chengxin
AU - Wang, Chen
AU - Zhang, Hemin
AU - Zhao, Chun
AU - Quan, Aojie
AU - Sadeghpour, Sina
AU - Torunbalci, Mustafa Mert
AU - Kraft, Michael
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Capacitive actuation and piezoresistive detection (CAPD) mechanisms have been explored to enhance the bandwidth of resonant accelerometers, leveraging their high transduction gain to amplify weak signals. Despite these advantages, the stiffness of beams for the piezoresistive gauges poses a challenge to achieving high sensitivity and resolution. To address this limitation, this article presents a high-resolution resonant accelerometer with enhanced scale factor using a thermal boost approach to increase sensitivity. The accelerometer features a CAPD resonator consisting of a dual-clamped beam with two symmetrically arranged piezoresistive gauges. By applying a dc thermal voltage across these piezoresistive gauges, a thermal perturbation stiffness arises due to the resistance difference between the two gauges. This stiffness alters the coupling between the in-phase and out-of-phase modes of the resonator, enabling enhancements to the scale factor of the resonant accelerometer. Experimental results show that this approach significantly improves the scale factor from 975 to 2483 Hz/g and decreases the noise spectral density from 2.4 to 0.9 μg/√d Hz, while maintaining a high bandwidth of 1000 Hz. This advancement highlights the effectiveness of thermal perturbation in boosting the scale factor and achieving a higher bandwidth-to-noise floor ratio of 1111 for resonant accelerometers.
AB - Capacitive actuation and piezoresistive detection (CAPD) mechanisms have been explored to enhance the bandwidth of resonant accelerometers, leveraging their high transduction gain to amplify weak signals. Despite these advantages, the stiffness of beams for the piezoresistive gauges poses a challenge to achieving high sensitivity and resolution. To address this limitation, this article presents a high-resolution resonant accelerometer with enhanced scale factor using a thermal boost approach to increase sensitivity. The accelerometer features a CAPD resonator consisting of a dual-clamped beam with two symmetrically arranged piezoresistive gauges. By applying a dc thermal voltage across these piezoresistive gauges, a thermal perturbation stiffness arises due to the resistance difference between the two gauges. This stiffness alters the coupling between the in-phase and out-of-phase modes of the resonator, enabling enhancements to the scale factor of the resonant accelerometer. Experimental results show that this approach significantly improves the scale factor from 975 to 2483 Hz/g and decreases the noise spectral density from 2.4 to 0.9 μg/√d Hz, while maintaining a high bandwidth of 1000 Hz. This advancement highlights the effectiveness of thermal perturbation in boosting the scale factor and achieving a higher bandwidth-to-noise floor ratio of 1111 for resonant accelerometers.
KW - Bandwidth
KW - resonant accelerometer
KW - sensitivity boost
KW - thermal perturbation stiffness
UR - http://www.scopus.com/inward/record.url?scp=105002492968&partnerID=8YFLogxK
U2 - 10.1109/TED.2025.3554161
DO - 10.1109/TED.2025.3554161
M3 - 文章
AN - SCOPUS:105002492968
SN - 0018-9383
JO - IEEE Transactions on Electron Devices
JF - IEEE Transactions on Electron Devices
ER -