具有热升压灵敏度的高分辨率大带宽谐振加速度计

IF 2.9 2区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Chengxin Li;Chen Wang;Hemin Zhang;Chun Zhao;Aojie Quan;Sina Sadeghpour;Mustafa Mert Torunbalci;Michael Kraft
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引用次数: 0

摘要

电容驱动和压阻检测(CAPD)机制已经被探索来增强谐振加速度计的带宽,利用它们的高转导增益来放大弱信号。尽管有这些优点,但压阻式压力表的梁的刚度对实现高灵敏度和高分辨率提出了挑战。为了解决这一限制,本文提出了一种高分辨率谐振加速度计,该加速度计具有增强的比例因子,使用热升压方法来提高灵敏度。加速度计的特点是一个CAPD谐振器,由一个双夹紧的光束和两个对称排列的压阻压力表组成。通过在这些压阻压力表上施加直流热电压,由于两个压力表之间的电阻差异而产生热扰动刚度。这种刚度改变了谐振器的同相和非相模式之间的耦合,从而增强了谐振加速度计的比例系数。实验结果表明,该方法将比例因子从975提高到2483 Hz/g,将噪声谱密度从2.4降低到0.9~\mu $ g/ $ $ surd $ Hz,同时保持了1000 Hz的高带宽。这一进展突出了热扰动在提高谐振加速度计的比例因子和实现更高的带宽与噪声底比(1111)方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A High-Resolution and Large-Bandwidth Resonant Accelerometer With Thermal Boost Sensitivity
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~\mu $ g/ $\surd $ 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.
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来源期刊
IEEE Transactions on Electron Devices
IEEE Transactions on Electron Devices 工程技术-工程:电子与电气
CiteScore
5.80
自引率
16.10%
发文量
937
审稿时长
3.8 months
期刊介绍: IEEE Transactions on Electron Devices publishes original and significant contributions relating to the theory, modeling, design, performance and reliability of electron and ion integrated circuit devices and interconnects, involving insulators, metals, organic materials, micro-plasmas, semiconductors, quantum-effect structures, vacuum devices, and emerging materials with applications in bioelectronics, biomedical electronics, computation, communications, displays, microelectromechanics, imaging, micro-actuators, nanoelectronics, optoelectronics, photovoltaics, power ICs and micro-sensors. Tutorial and review papers on these subjects are also published and occasional special issues appear to present a collection of papers which treat particular areas in more depth and breadth.
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