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Cubic singularities in binary linear electromechanical oscillators

2023/02/24 by Xin Zhou, Zhou, Xin, Hui Jing +19 · 5 citations
Physics and Astronomy · Engineering · #Mechanical and Optical Resonators #Force Microscopy Techniques and Applications #Advanced MEMS and NEMS Technologies

paper · pdf · doi:10.48550/arxiv.2302.12471

Abstract

Singularities arise in diverse disciplines and play a key role in both exploring fundamental laws of physics and making highly-sensitive sensors. Higher-order (>3) singularities, with further improved performance, however, usually require exquisite tuning of multiple (>3) coupled degrees of freedom or nonlinear control, thus severely limiting their applications in practice. Here we propose theoretically and confirm using mechanics experiments that, cubic singularities can be realized in a coupled binary system without any nonlinearity, only by observing the phase tomography of the driven response. By steering the cubic phase-tomographic singularities in an electrostatically-tunable micromechanical system, enhanced cubic-root response to frequency perturbation and voltage-controlled nonreciprocity are demonstrated. Our work opens up a new phase-tomographic method for interacted-system research and sheds new light on building and engineering advanced singular devices with simple and well-controllable elements, with a wide range of applications including precision metrology, portable nonreciprocal devices, and on-chip mechanical computing.

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