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硅微纳机械谐振器品质因数的量子极限

Quantum limit of quality factor in silicon micro and nano mechanical resonators.

作者信息

Ghaffari Shirin, Chandorkar Saurabh A, Wang Shasha, Ng Eldwin J, Ahn Chae H, Hong Vu, Yang Yushi, Kenny Thomas W

机构信息

Stanford University, Mechanical Engineering Department, 440 Escondido Mall, Stanford, CA 94305, USA.

出版信息

Sci Rep. 2013 Nov 19;3:3244. doi: 10.1038/srep03244.

Abstract

Micromechanical resonators are promising replacements for quartz crystals for timing and frequency references owing to potential for compactness, integrability with CMOS fabrication processes, low cost, and low power consumption. To be used in high performance reference application, resonators should obtain a high quality factor. The limit of the quality factor achieved by a resonator is set by the material properties, geometry and operating condition. Some recent resonators properly designed for exploiting bulk-acoustic resonance have been demonstrated to operate close to the quantum mechanical limit for the quality factor and frequency product (Q-f). Here, we describe the physics that gives rise to the quantum limit to the Q-f product, explain design strategies for minimizing other dissipation sources, and present new results from several different resonators that approach the limit.

摘要

微机械谐振器因其具有紧凑性、可与CMOS制造工艺集成、低成本和低功耗等潜力,有望成为用于定时和频率参考的石英晶体的替代品。为了用于高性能参考应用,谐振器应具有高品质因数。谐振器所达到的品质因数极限由材料特性、几何形状和工作条件决定。最近一些为利用体声波谐振而精心设计的谐振器已被证明其工作状态接近品质因数与频率乘积(Q-f)的量子力学极限。在此,我们描述了导致Q-f乘积出现量子极限的物理原理,解释了将其他耗散源降至最低的设计策略,并展示了来自几种不同谐振器的接近该极限的新结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a22d/3832850/72b06a401919/srep03244-f1.jpg

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