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微腔中通过不稳定动力学实现的机械挤压

Mechanical Squeezing via Unstable Dynamics in a Microcavity.

作者信息

Kustura Katja, Gonzalez-Ballestero Carlos, Sommer Andrés de Los Ríos, Meyer Nadine, Quidant Romain, Romero-Isart Oriol

机构信息

Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences, A-6020 Innsbruck, Austria.

Institute for Theoretical Physics, University of Innsbruck, A-6020 Innsbruck, Austria.

出版信息

Phys Rev Lett. 2022 Apr 8;128(14):143601. doi: 10.1103/PhysRevLett.128.143601.

Abstract

We theoretically show that strong mechanical quantum squeezing in a linear optomechanical system can be rapidly generated through the dynamical instability reached in the far red-detuned and ultrastrong coupling regime. We show that this mechanism, which harnesses unstable multimode quantum dynamics, is particularly suited to levitated optomechanics, and we argue for its feasibility for the case of a levitated nanoparticle coupled to a microcavity via coherent scattering. We predict that for submillimeter-sized cavities the particle motion, initially thermal and well above its ground state, becomes mechanically squeezed by tens of decibels on a microsecond timescale. Our results bring forth optical microcavities in the unresolved sideband regime as powerful mechanical squeezers for levitated nanoparticles, and hence as key tools for quantum-enhanced inertial and force sensing.

摘要

我们从理论上表明,通过在远失谐和超强耦合 regime 中达到的动力学不稳定性,可以在一个线性光机械系统中快速产生强机械量子压缩。我们表明,这种利用不稳定多模量子动力学的机制特别适用于悬浮光力学,并且我们论证了对于通过相干散射耦合到微腔的悬浮纳米粒子的情况其可行性。我们预测,对于亚毫米尺寸的腔,最初处于热态且远高于其基态的粒子运动,在微秒时间尺度上会被机械压缩数十分贝。我们的结果表明,处于未分辨边带 regime 的光学微腔是用于悬浮纳米粒子的强大机械压缩器,因此是量子增强惯性和力传感的关键工具。

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