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Millikelvin cooling of an optically trapped microsphere in vacuum

机译:Millikelvin在真空中冷却光学捕获的微球

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Cooling of micromechanical resonators towards the quantum mechanical ground state in their centre-of-mass motion has advanced rapidly in recent years ~(1-8). This work is an important step towards the creation of Schr?dinger cats, quantum superpositions of macroscopic observables, and the study of their destruction by decoherence. Here we report optical trapping of glass microspheres in vacuum with high oscillation frequencies, and cooling of the centre-of-mass motion from room temperature to a minimum temperature of about 1.5 mK. This new system eliminates the physical contact inherent to clamped cantilevers, and can allow ground-state cooling from room temperature~(9-15). More importantly, the optical trap can be switched off, allowing a microsphere to undergo free-fall in vacuum after cooling ~(15). This is ideal for studying the gravitational state reduction, a manifestation of the apparent conflict between general relativity and quantum mechanics16,20. A cooled optically trapped object in vacuum can also be used to search for non-Newtonian gravity forces at small scales21, measure the impact of a single air molecule and even produce Schr?dinger cats of living organisms~9.
机译:近年来,微机械谐振器在其质心运动中向量子机械基态的冷却已迅速发展(1-8)。这项工作是朝着薛定er猫的创作,宏观可观察物的量子叠加以及研究它们的退相干性破坏迈出的重要一步。在这里,我们报告了在高振荡频率的真空中捕获玻璃微球的光学捕获,以及质心运动从室温冷却到最低温度约1.5 mK的过程。这个新系统消除了固定悬臂固有的物理接触,并允许从室温到(9-15)的基态冷却。更重要的是,可以关闭光阱,从而使微球在冷却〜(15)之后在真空中自由下落。这是研究引力态还原的理想选择,引力态还原是广义相对论与量子力学之间明显矛盾的体现[16,20]。在真空中冷却的被光学捕获的物体也可用于寻找小尺度的非牛顿重力,21测量单个空气分子的影响,甚至产生活生物的薛定er猫。

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