Higher-order singularities in phase-tracked electromechanical oscillators

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作者
Xin Zhou
Xingjing Ren
Dingbang Xiao
Jianqi Zhang
Ran Huang
Zhipeng Li
Xiaopeng Sun
Xuezhong Wu
Cheng-Wei Qiu
Franco Nori
Hui Jing
机构
[1] College of Intelligence Science and Technology,State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics
[2] NUDT,Center for Quantum Computing
[3] Innovation Academy of Precision Measurement Science and Technology,Department of Electrical and Computer Engineering
[4] Chinese Academy of Sciences,Department of Physics
[5] Cluster for Pioneering Research,Key Laboratory of Low
[6] RIKEN,Dimensional Quantum Structures and Quantum Control of Ministry of Education, Department of Physics and Synergetic Innovation Center for Quantum Effects and Applications
[7] National University of Singapore,Academy for Quantum Science and Technology
[8] University of Michigan,undefined
[9] Hunan Normal University,undefined
[10] Zhengzhou University of Light Industry,undefined
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摘要
Singularities ubiquitously exist in different fields and play a pivotal role in probing the fundamental laws of physics and developing highly sensitive sensors. Nevertheless, achieving higher-order (≥3) singularities, which exhibit superior performance, typically necessitates meticulous tuning of multiple (≥3) coupled degrees of freedom or additional introduction of nonlinear potential energies. Here we propose theoretically and confirm using mechanics experiments, the existence of an unexplored cusp singularity in the phase-tracked (PhT) steady states of a pair of coherently coupled mechanical modes without the need for multiple (≥3) coupled modes or nonlinear potential energies. By manipulating the PhT singularities in an electrostatically tunable micromechanical system, we demonstrate an enhanced cubic-root response to frequency perturbations. This study introduces a new phase-tracking method for studying interacting systems and sheds new light on building and engineering advanced singular devices with simple and well-controllable elements, with potential applications in precision metrology, portable nonreciprocal devices, and on-chip mechanical computing.
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