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首页> 外文期刊>Journal of Micromechanics and Microengineering >An adaptive feedback circuit for MEMS resonators
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An adaptive feedback circuit for MEMS resonators

机译:MEMS谐振器的自适应反馈电路

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摘要

The first adaptive feedback circuit capable of detecting resonant frequencies for a wide range of MEMS resonators is presented. The feedback system presented implements a hill-climbing algorithm that sweeps actuation frequencies, locking onto the resonance condition at maximum cantilever amplitude response without limitations on the frequency range. To demonstrate its adaptability, a circuit implementation of this feedback algorithm was used to detect the resonant frequency of eight different cantilever-based sensors (width (W) = 1.4 μm, length (L) = 40-75μm, and thickness (T) = 1.8μm), resonating at 201.0 to 592.1 kHz. Additionally, the same circuit was used to track resonant frequency shifts due to isopropanol adsorption on three different chemical sensors with no modifications. The feedback electronics integrated with these resonator sensors provide a mass resolution limit of 123 femptograms. The realization of this system will enable real-time chip-scale sensor systems, providing an alternative to external instrumentation modules that perform sensor control and monitoring.
机译:提出了能够检测各种MEMS谐振器谐振频率的第一自适应反馈电路。提出的反馈系统实现了爬坡算法,该算法可以扫描致动频率,以最大悬臂振幅响应锁定共振条件,而不受频率范围的限制。为了证明其适应性,该反馈算法的电路实现用于检测八个不同的基于悬臂的传感器的谐振频率(宽度(W)= 1.4μm,长度(L)=40-75μm,厚度(T)= 1.8μm),在201.0至592.1 kHz处产生谐振。另外,同一电路用于跟踪由于异丙醇在三个不同化学传感器上的吸附而引起的共振频率偏移,而没有进行任何修改。与这些谐振器传感器集成在一起的反馈电子设备提供的质量分辨率极限为123伏特图。该系统的实现将启用实时芯片级传感器系统,为执行传感器控制和监视的外部仪器模块提供替代方案。

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