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Multi-Frequency Resonance Behaviour of a Si Fractal NEMS Resonator

机译:分形NEMS谐振器的多频谐振行为

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摘要

Novel Si-based nanosize mechanical resonator has been top-down fabricated. The shape of the resonating body has been numerically derived and consists of seven star-polygons that form a fractal structure. The actual resonator is defined by focused ion-beam implantation on a SOI wafer where its 18 vertices are clamped to nanopillars. The structure is suspended over a 10 μm trench and has width of 12 μm. Its thickness of 0.040 μm is defined by the fabrication process and prescribes Young’s modulus of 76 GPa which is significantly lower than the value of the bulk material. The resonator is excited by the bottom Si-layer and the interferometric characterisation confirms broadband frequency response with quality factors of over 800 for several peaks between 2 MHz and 16 MHz. COMSOL FEM software has been used to vary material properties and residual stress in order to fit the eigenfrequencies of the model with the resonance peaks detected experimentally. Further use of the model shows how the symmetry of the device affects the frequency spectrum. Also, by using the FEM model, the possibility for an electrical read out of the device was tested. The experimental measurements and simulations proved that the device can resonate at many different excitation frequencies allowing multiple operational bands. The size, and the power needed for actuation are comparable with the ones of single beam resonator while the fractal structure allows much larger area for functionalisation.
机译:自上而下地制造了新型的基于硅的纳米尺寸机械谐振器。共振体的形状已通过数值推导得出,由七个形成分形结构的星形多边形组成。实际的谐振器是通过在SOI晶片上进行聚焦离子束注入来定义的,该晶片的18个顶点被夹持在纳米柱上。该结构悬挂在10μm的沟槽上,宽度为12μm。它的厚度为0.040μm,由制造工艺确定,规定的杨氏模量为76 GPa,远低于松散材料的值。谐振器被底部Si层激励,并且干涉测量特性证实了宽带频率响应,对于2 MHz至16 MHz之间的几个峰值,其品质因数超过800。 COMSOL FEM软件已用于改变材料特性和残余应力,以使模型的本征频率与实验检测到的共振峰相吻合。对该模型的进一步使用说明了设备的对称性如何影响频谱。此外,通过使用FEM模型,测试了从设备上读出电的可能性。实验测量和仿真证明,该器件可以在许多不同的激励频率下谐振,从而允许多个工作频带。驱动所需的尺寸和功率可与单束谐振器相媲美,而分形结构则允许更大的功能区。

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