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Nonperturbative Dynamical Casimir Effect in Optomechanical Systems: Vacuum Casimir-Rabi Splittings

机译:光机系统中的非触发动态卡西米尔效应:真空Casimir-Rabi分裂

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We study the dynamical Casimir effect using a fully quantum-mechanical description of both the cavity field and the oscillating mirror. We do not linearize the dynamics, nor do we adopt any parametric or perturbative approximation. By numerically diagonalizing the full optomechanical Hamiltonian, we show that the resonant generation of photons from the vacuum is determined by a ladder of mirror-field vacuum Rabi splittings. We find that vacuum emission can originate from the free evolution of an initial pure mechanical excited state, in analogy with the spontaneous emission from excited atoms. By considering a coherent drive of the mirror, using a master-equation approach to take losses into account, we are able to study the dynamical Casimir effect for optomechanical coupling strengths ranging from weak to ultrastrong. We find that a resonant production of photons out of the vacuum can be observed even for mechanical frequencies lower than the cavity-mode frequency. Since high mechanical frequencies, which are hard to achieve experimentally, were thought to be imperative for realizing the dynamical Casimir effect, this result removes one of the major obstacles for the observation of this long-sought effect. We also find that the dynamical Casimir effect can create entanglement between the oscillating mirror and the radiation produced by its motion in the vacuum field, and that vacuum Casimir-Rabi oscillations can occur. Finally, we also show that all these findings apply not only to optomechanical systems, but also to parametric amplifiers operating in the fully quantum regime.
机译:我们使用腔场和振荡镜的完全量子力学描述来研究动态Casimir效果。我们没有线性化动态,我们也没有采用任何参数或扰动近似。通过数值对角化全光机械汉密尔顿人,我们表明来自真空的谐振产生由镜面真空Rabi分裂器的梯子确定。我们发现真空发射可以源自初始纯机械激发态的自由演变,类似于激发原子的自发排放。通过考虑镜子的相干驱动,使用主方程方法考虑损失,我们能够研究用于从弱到超越的光机械耦合强度的动态Casimir效果。我们发现,即使对于低于腔模式频率的机械频率,也可以观察到真空中的光子的共振生产。由于难以通过实验实现的高机械频率被认为是实现动态Casimir效应的势在必行,因此该结果除去了观察这种长寻求效果的主要障碍之一。我们还发现动态Casimir效应可以在振荡镜和通过在真空场中运动产生的辐射之间产生缠结,并且可以发生真空Casimir-Rabi振荡。最后,我们还表明所有这些发现不仅适用于光学机械系统,还适用于在完全量子制度中运行的参数放大器。

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