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Design and modeling of MEMS resonator for magnetic field sensing using hybrid actuation technique

机译:混合驱动技术的磁场感应MEMS谐振器设计与建模

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A novel design of 0.751MHz MEMS resonant magnetic field sensor of mass 0.775pg based on hybrid actuation technique (Lorentz force and Electrostatic force) is presented and simulated using Coventor Ware and CADENCE simulators. The sensor consists of Aluminum paddle resonator, two supporting beams, driving electrodes, sensing electrode and silicon substrate with a capacitive CMOS readout amplifier. Working in a resonant condition, the sensor's vibration amplitude is converted into the sensing capacitance change, which reflects the outside magnetic flux-density. Based on the simulation, the key structure parameters are optimized and the resonant frequency is estimated. The results of the device are in accordance with the theoretical results of the designed model. The resolution of the sensor is 1 nT. The results indicate its sensitivity more than 0.01 nVT, when operating at a normal atmosphere. The sensitivity and resolution can be enhanced through vacuum packaging.
机译:提出了一种基于混合驱动技术(洛伦兹力和静电力)的质量为0.775pg的0.751MHz MEMS谐振磁场传感器的新颖设计,并使用Coventor Ware和CADENCE模拟器进行了仿真。该传感器由铝桨谐振器,两个支撑梁,驱动电极,感测电极和带有电容性CMOS读出放大器的硅基板组成。在共振条件下工作,传感器的振动幅度被转换为感应电容的变化,这反映了外部磁通量密度。在仿真的基础上,对关键结构参数进行了优化,并估计了谐振频率。该设备的结果与设计模型的理论结果一致。传感器的分辨率为1 nT。结果表明,在正常环境下工作时,其灵敏度超过0.01 nV / nT。通过真空包装可以提高灵敏度和分辨率。

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