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Laser-induced rotation and cooling of a trapped microgyroscope in vacuum

机译:真空中诱捕的微型陀螺仪的激光诱导旋转和冷却

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Quantum state preparation of mesoscopic objects is a powerful playground for the elucidation of many physical principles. The field of cavity optomechanics aims to create these states through laser cooling and by minimizing state decoherence. Here we demonstrate simultaneous optical trapping and rotation of a birefringent microparticle in vacuum using a circularly polarized trapping laser beam—a microgyroscope. We show stable rotation rates up to 5?MHz. Coupling between the rotational and translational degrees of freedom of the trapped microgyroscope leads to the observation of positional stabilization in effect cooling the particle to 40?K. We attribute this cooling to the interaction between the gyroscopic directional stabilization and the optical trapping field.
机译:介观物体的量子态准备是阐明许多物理原理的有力场所。腔体光力学领域旨在通过激光冷却并最小化状态退相干来创建这些状态。在这里,我们演示了使用圆偏振捕获激光束(微陀螺仪)在真空中同时进行双折射微粒的光学捕获和旋转。我们显示出高达5?MHz的稳定旋转速率。被捕获的微型陀螺仪的旋转和平移自由度之间的耦合导致观察到位置稳定,从而有效地将粒子冷却到40?K。我们将这种冷却归因于陀螺仪方向稳定与光阱之间的相互作用。

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