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Single and two-mode mechanical squeezing of an optically levitated nanodiamond via dressed-state coherence

机译:通过梳理态相干性对光学悬浮纳米金刚石的单模和双模机械压缩

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Nonclassical states of macroscopic objects are promising for ultrasensitive metrology as well as testing quantum mechanics. In this work, we investigate dissipative mechanical quantum state engineering in an optically levitated nanodiamond. First, we study single-mode mechanical squeezed states by magnetically coupling the mechanical motion to a dressed three-level system provided by a nitrogen-vacancy center in the nanoparticle. Quantum coherence between the dressed levels is created via microwave fields to induce a two-phonon transition, which results in mechanical squeezing. Remarkably, we find that in ultrahigh vacuum quantum squeezing is achievable at room temperature with feedback cooling. For moderate vacuum, quantum squeezing is possible with cryogenic temperature. Second, we present a setup for two mechanical modes coupled to the dressed three levels, which results in two-mode squeezing analogous to the mechanism of the single-mode case. In contrast to previous works, our study provides a deterministic method for engineering macroscopic squeezed states without the requirement for a cavity.
机译:宏观物体的非经典状态有望用于超灵敏的计量学以及测试量子力学。在这项工作中,我们研究了光悬浮纳米金刚石中的耗散机械量子态工程。首先,我们通过将机械运动磁耦合到由纳米粒子中的氮空位中心提供的修整的三级系统来研究单模机械压缩状态。修整层之间的量子相干是通过微波场产生的,以引起两声子跃迁,从而导致机械挤压。值得注意的是,我们发现在超高真空中,在室温下通过反馈冷却可以实现量子压缩。对于中等真空度,可以在低温下进行量子压缩。其次,我们为耦合到修整后的三个级别的两个机械模式提供了一种设置,这导致了类似于单模式情况下的机制的双模式压缩。与以前的工作相比,我们的研究提供了一种确定性方法,可用于工程宏观压缩状态而无需腔。

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