论文标题
非线性鼓头MEMS谐振器的超声调整通过电燃料屈曲
Ultra-tuning of nonlinear drumhead MEMS resonators by electro-thermoelastic buckling
论文作者
论文摘要
非线性微电机力学系统(MEMS)谐振器通过启用频率调整和增加的带宽来开辟新的传感和信号操纵机会。在这里,我们设计,制造和研究鼓头谐振器表现出强烈的非线性动力学,并开发降低的订单模型(ROM)以准确捕获其响应。谐振器经历了静电介导的热弹性屈曲,其固有频率从4.7至11.3 MHz(2.4倍可调性)。此外,施加的屈曲开关可以在纯僵硬,纯软化甚至软化之间的谐振器之间的非线性。访问这些外来动力学需要精确控制温度和谐振器临界点附近的直流静电力。为了解释观察到的可调性,我们开发了一个基于物理的一维ROM,该ROM预测了这些鼓头谐振器的基本弯曲模式的线性和非线性响应。 ROM捕获了由三个来源产生的内部应力的动态效应:制造过程中的残余应力,组成层之间的热膨胀不匹配,最后是施加的静电力。 ROM复制了观察到的线性可调性(在5.5%的误差范围内)和非线性响应,甚至在临界屈曲状态附近。这些固有频率的显着非线性和大型可调性是广泛应用中的片上声学设备(例如信号操纵,过滤和MEMS波导)中的宝贵特征。
Nonlinear micro-electro-mechanical systems (MEMS) resonators open new opportunities in sensing and signal manipulation compared to their linear counterparts by enabling frequency tuning and increased bandwidth. Here, we design, fabricate and study drumhead resonators exhibiting strongly nonlinear dynamics and develop a reduced order model (ROM) to capture their response accurately. The resonators undergo electrostatically-mediated thermoelastic buckling which tunes their natural frequency from 4.7 to 11.3 MHz, a factor of 2.4x tunability. Moreover, the imposed buckling switches the nonlinearity of the resonators between purely stiffening, purely softening, and even softening-to-stiffening. Accessing these exotic dynamics requires precise control of the temperature and the DC electrostatic forces near the resonator's critical-buckling point. To explain the observed tunability, we develop a one-dimensional physics-based ROM that predicts the linear and nonlinear response of the fundamental bending mode of these drumhead resonators. The ROM captures the dynamic effects of the internal stresses resulting from three sources: The residual stresses from the fabrication process, the mismatch in thermal expansion between the constituent layers, and lastly, the applied electrostatic forces. The ROM replicates the observed tunability of linear (within 5.5% error) and nonlinear responses even near the states of critical buckling. These remarkable nonlinear and large tunability of the natural frequency are valuable features for on-chip acoustic devices in broad applications such as signal manipulation, filtering, and MEMS waveguides.