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Nonlinear dynamics of nanomechanical beam resonators: improving the performance of NEMS-based sensors

机译:纳米机械束谐振器的非线性动力学:提高基于NEMS的传感器的性能

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In order to compensate for the loss of performance when scaling resonant sensors down to NEMS, it proves extremely useful to study the behavior of resonators up to very high displacements and hence high nonlinearities. This work describes a comprehensive nonlinear multiphysics model based on the Euler-Bernoulli equation which includes both mechanical and electrostatic nonlinearities valDE up to displacements comparable to the gap in the case of an electrostatically actuated doubly clamped beam. Moreover, the model takes into account the fringing field effects, significant for thin resonators. The model has been compared to both numerical integrations and electrical measurements of devices fabricated on 200 mm SOI wafers; it shows very good agreement with both. An important contribution of this work is the provision for closed-form expressions of the critical amplitude and the pull-in domain initiation amplitude including all nonlinearities. This model allows designers to cancel out nonlinearities by tuning some design parameters and thus gives the possibility to drive the resonator beyond its critical amplitude. Consequently, the sensor performance can be enhanced to the maximum below the pull-in instability, while keeping a linear behavior.
机译:为了补偿将谐振传感器缩小到NEMS时的性能损失,研究谐振器在高位移和高非线性时的行为极为有用。这项工作描述了一个基于Euler-Bernoulli方程的综合非线性多物理场模型,该模型包括机械和静电非线性valDE,直至位移与在静电驱动双束电子束下的缝隙相当。此外,该模型考虑了边缘场效应,这对于薄型谐振器很重要。该模型已与在200 mm SOI晶圆上制造的器件的数值积分和电气测量进行了比较;两者都显示出很好的一致性。这项工作的重要贡献是提供了包括所有非线性在内的临界振幅和引入域起始振幅的闭合形式的表达式。该模型允许设计人员通过调整一些设计参数来消除非线性,从而使驱动谐振器超过其临界幅度成为可能。因此,在保持线性性能的同时,可以将传感器性能最大提高到低于拉入不稳定性的水平。

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