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基于测量的机械运动量子控制。

Measurement-based quantum control of mechanical motion.

机构信息

Niels Bohr Institute, University of Copenhagen, Copenhagen, Denmark.

Center for Hybrid Quantum Networks (Hy-Q), Niels Bohr Institute, University of Copenhagen, Copenhagen, Denmark.

出版信息

Nature. 2018 Nov;563(7729):53-58. doi: 10.1038/s41586-018-0643-8. Epub 2018 Oct 31.

DOI:10.1038/s41586-018-0643-8
PMID:30382202
Abstract

Controlling a quantum system by using observations of its dynamics is complicated by the backaction of the measurement process-that is, the unavoidable quantum disturbance caused by coupling the system to a measurement apparatus. An efficient measurement is one that maximizes the amount of information gained per disturbance incurred. Real-time feedback can then be used to cancel the backaction of the measurement and to control the evolution of the quantum state. Such measurement-based quantum control has been demonstrated in the clean settings of cavity and circuit quantum electrodynamics, but its application to motional degrees of freedom has remained elusive. Here we demonstrate measurement-based quantum control of the motion of a millimetre-sized membrane resonator. An optomechanical transducer resolves the zero-point motion of the resonator in a fraction of its millisecond-scale coherence time, with an overall measurement efficiency close to unity. An electronic feedback loop converts this position record to a force that cools the resonator mode to its quantum ground state (residual thermal occupation of about 0.29). This occupation is nine decibels below the quantum-backaction limit of sideband cooling and six orders of magnitude below the equilibrium occupation of the thermal environment. We thus realize a long-standing goal in the field, adding position and momentum to the degrees of freedom that are amenable to measurement-based quantum control, with potential applications in quantum information processing and gravitational-wave detectors.

摘要

利用对动力学的观测来控制量子系统是复杂的,因为测量过程的反作用——即由于将系统耦合到测量仪器而不可避免地引起的量子干扰。有效的测量是一种在每次干扰中获得最大信息量的测量。然后可以使用实时反馈来消除测量的反作用并控制量子态的演化。这种基于测量的量子控制已经在腔和电路量子电动力学的清洁环境中得到了证明,但它在运动自由度上的应用仍然难以捉摸。在这里,我们演示了对毫米大小的膜谐振器运动的基于测量的量子控制。光机械换能器以其毫秒级相干时间的一小部分分辨率分辨谐振器的零点运动,整体测量效率接近 1。电子反馈回路将此位置记录转换为力,将谐振器模式冷却到其量子基态(残余热占据约 0.29)。这个占据比边带冷却的量子反作用限制低 9 分贝,比热环境的平衡占据低 6 个数量级。因此,我们实现了该领域的一个长期目标,将可用于基于测量的量子控制的自由度添加到位置和动量,这在量子信息处理和引力波探测器中有潜在的应用。

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