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Enhancement of Frequency Stability Using Synchronization of a Cantilever Array for MEMS-Based Sensors

机译:使用基于MEMS的传感器的悬臂阵列同步增强频率稳定性

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摘要

Micro and nano electromechanical resonators have been widely used as single or multiple-mass detection sensors. Smaller devices with higher resonance frequencies and lower masses offer higher mass responsivities but suffer from lower frequency stability. Synchronization phenomena in multiple MEMS resonators have become an important issue because they allow frequency stability improvement, thereby preserving mass responsivity. The authors present an array of five cantilevers (CMOS-MEMS system) that are forced to vibrate synchronously to enhance their frequency stability. The frequency stability has been determined in closed-loop configuration for long periods of time by calculating the Allan deviation. An Allan deviation of 0.013 ppm (@ 1 s averaging time) for a 1 MHz cantilever array MEMS system was obtained at the synchronized mode, which represents a 23-fold improvement in comparison with the non-synchronized operation mode (0.3 ppm).
机译:微米和纳米机电谐振器已被广泛用作单个或多个质量检测传感器。具有较高谐振频率和较低质量的较小设备可提供较高的质量响应度,但具有较低的频率稳定性。多个MEMS谐振器中的同步现象已成为一个重要问题,因为它们可以改善频率稳定性,从而保持质量响应性。作者介绍了五个悬臂阵列(CMOS-MEMS系统),这些悬臂被迫同步振动以增强其频率稳定性。通过计算Allan偏差,已在闭环配置中确定了长时间的频率稳定性。在同步模式下,对于1 MHz悬臂阵列MEMS系统,其Allan偏差为0.013 ppm(平均时间为1 s),与非同步操作模式(0.3 ppm)相比,其Allan偏差提高了23倍。

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