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分叉产生的机械频率梳。

Bifurcation Generated Mechanical Frequency Comb.

机构信息

Center for Nanoscale Materials, Argonne National Laboratory, Lemont, Illinois 60439, USA.

Ben-Gurion University of the Negev, Beer-sheva 84105, Israel.

出版信息

Phys Rev Lett. 2018 Dec 14;121(24):244302. doi: 10.1103/PhysRevLett.121.244302.

Abstract

We demonstrate a novel response of a nonlinear micromechanical resonator when operated in a region of strong, nonlinear mode coupling. The system is excited with a single drive signal and its response is characterized by periodic amplitude modulations that occur at timescales based on system parameters. The periodic amplitude modulations of the resonator are a consequence of nonlinear mode coupling and are responsible for the emergence of a "frequency-comb" regime in the spectral response. By considering a generic model for a 1∶3 internal resonance, we demonstrate that the novel behavior results from a saddle node on an invariant circle (SNIC) bifurcation. The ability to control the operating parameters of the micromechanical structures reported here makes the simple micromechanical resonator an ideal test bed to study the dynamic response of SNIC behavior demonstrated in mechanical, optical, and biological systems.

摘要

我们展示了一种新颖的非线性微机械谐振器的响应,该谐振器在强非线性模式耦合区域中工作。该系统由单个驱动信号激励,其响应的特征在于基于系统参数的时间尺度上发生的周期性幅度调制。谐振器的周期性幅度调制是非线性模式耦合的结果,并且负责在光谱响应中出现“频率梳”状态。通过考虑通用的 1∶3 内共振模型,我们证明了新颖的行为是由不变圆上的鞍结分岔(SNIC)引起的。由于能够控制报告的微机械结构的操作参数,因此简单的微机械谐振器成为研究在机械、光学和生物系统中表现出的 SNIC 行为的动态响应的理想测试平台。

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