首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Multistability, staircases, and optical high-order sideband combs in optomechanics
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Multistability, staircases, and optical high-order sideband combs in optomechanics

机译:多工,楼梯和光学高阶边带梳子在光学力学中

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Optomechanical systems are known to exhibit self-sustained limit cycles once driven above the parametric instability point. This breaks down the linearized approximation and induces novel nonlinear effects such as dynamical multistability, staircase behavior, and the generation of optical high-order sideband combs (HOSCs). Here, we study the classical nonlinear dynamics of optomechanical systems. We combine numerical simulations and analytical investigation to predict dynamical multistability in the resolved sideband regime. A way to predict the onset of the period doubling process and to control the multistability is analytically provided by tuning the optical linewidth. Indeed, the multistability behavior first changes to a staircase shape and gradually disappears as the system approaches the unresolved sideband limit. We exploit the multistable attractors to generate optical HOSCs by acting solely on the initial values instead of increasing the driving strength. This is the figure of merit of our proposal to relate multistability to the HOSC. As a result, the properties (bandwidth, intensity) of the combs are improved as the mechanical resonator moves towards upper attractors. This work opens a way for low-power HOSCgeneration in optomechanics and the related technological applications. (C) 2020 Optical Society of America
机译:众所周知,光机械系统一旦驱动到参数不稳定点以上,就会表现出自我维持的极限环。这打破了线性化近似,并导致新的非线性效应,如动态多稳态、阶梯行为和光学高阶边带梳状结构(HOSC)的产生。这里,我们研究光机系统的经典非线性动力学。我们结合数值模拟和分析研究来预测解析边带区域的动态多稳态。通过调节光学线宽,从解析角度提供了预测倍周期过程开始和控制多稳态的方法。事实上,当系统接近未解决的边带极限时,多稳态行为首先变为阶梯形,然后逐渐消失。我们利用多稳态吸引子,通过仅作用于初始值而不是增加驱动强度来产生光学HOSC。这就是我们将多稳定性与居屋委员会联系起来的建议的优点。因此,随着机械谐振器向上吸引子移动,梳子的特性(带宽、强度)得到改善。这项工作为光机和相关技术应用中的低功率热电联产开辟了道路。(C) 2020美国光学学会

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