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A Resonant Pressure Sensor Based upon Electrostatically Comb Driven and Piezoresistively Sensed Lateral Resonators

机译:基于静电梳状驱动和压阻感测侧向谐振器的谐振压力传感器

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摘要

This study proposes a microfabricated resonant pressure sensor in which a pair of double-ended tuning forks were utilized as resonators where comb electrodes and single-crystal silicon-based piezoresistors were used for electrostatic excitation and piezoresistive detection, respectively. In operations, pressures under measurements deform the pressure-sensitive diaphragm to cause stress variations of two resonators distributed on the central and side positions of the pressure-sensitive diaphragm, where the corresponding changes of the intrinsic resonant frequencies are then captured piezoresistively. The developed resonant pressure sensors were fabricated based on MEMS with open-loop and closed-loop characterizations conducted. Key sensing parameters including quality factors, differential pressure/temperature sensitivities and fitting errors were quantified as higher than 17,000, 48.24 Hz/kPa, 0.15 Hz/°C and better than 0.01% F.S. (140 kpa), respectively. In comparison to previously reported resonant pressure sensors driven by parallel-plate electrodes, the developed sensor in this study is featured with a lower temperature sensitivity and a higher stability.
机译:这项研究提出了一种微细的谐振压力传感器,其中使用一对双音叉作为谐振器,其中梳状电极和单晶硅基压敏电阻分别用于静电激励和压阻检测。在操作中,测量中的压力会使压敏膜片变形,从而引起分布在压敏膜片中央和侧面位置的两个谐振器的应力变化,然后固有电阻频率的相应变化将被压阻式捕获。开发的谐振压力传感器是基于MEMS进行制造的,并进行了开环和闭环表征。包括质量因子,压差/温度敏感性和拟合误差在内的关键传感参数的量化值分别高于17,000、48.24 Hz / kPa,0.15 Hz /°C和优于0.01%F.S. (140 kpa)。与先前报道的由平行板电极驱动的谐振压力传感器相比,本研究中开发的传感器具有较低的温度灵敏度和较高的稳定性。

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