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Numerical and analytical modelling of holed MEMS resonators (Conference Paper)

机译:带孔MEMS谐振器的数值和解析模型(会议论文)

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After consistently progress in Micro-Electro-Mechanical (MEM) resonators, Silicon oscillators are finally being commercialized for time and frequency control applications not requiring huge frequency accuracy. Indeed, they offer size reduction, potentially low cost and CMOS integration. However, frequency shift because of holes, unavoidable for MEMS release or damping effects, is still one of the challenges to address high frequency accuracy applications. In this article, we present the mechanical modelling of holed clamped-clamped (CC) beam resonators. An analytical and a numerical model have been developed to obtain the frequency variations due to holes onto resonant structures. We note a good agreement between both models, presenting less than 1.5% of deviation. We also report the manufacturing of holed clamped-clamped beam resonators in only six major steps using compatible CMOS process. Electrical tests have been performed to check the functionality of our structures. Finally, electrical measurements and analytical model have been compared and a discrepancy less than 0.4% is reported. Analytical models validation enables designers to benefit from a powerful vibrating MEMS design tool, including the influence of holes onto resonant structures for any kinds of applications from sensors to actuators and oscillators.
机译:经过微机电(MEM)谐振器的不断发展,硅振荡器终于商业化,用于时间和频率控制应用,不需要很高的频率精度。实际上,它们提供了尺寸减小,潜在的低成本和CMOS集成的功能。然而,由于孔而引起的频率偏移对于MEMS释放或阻尼效应是不可避免的,仍然是解决高频精度应用的挑战之一。在本文中,我们介绍了带孔夹钳(CC)光束谐振器的力学模型。已经开发了解析模型和数值模型来获得由于谐振结构上的空穴而引起的频率变化。我们注意到两个模型之间的一致性很好,呈现出小于1.5%的偏差。我们还报告了使用兼容的CMOS工艺仅需六个主要步骤即可制造带孔的夹钳式梁谐振器。进行了电气测试以检查我们结构的功能。最后,对电气测量和分析模型进行了比较,发现差异小于0.4%。分析模型的验证使设计人员可以从功能强大的振动MEMS设计工具中受益,其中包括孔对谐振结构的影响,适用于从传感器到执行器和振荡器的各种应用。

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