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纠缠机械谐振器的量子态制备与层析成像。

Quantum state preparation and tomography of entangled mechanical resonators.

机构信息

Department of Applied Physics, Stanford University, Stanford, CA, USA.

Ginzton Laboratory, Stanford University, Stanford, CA, USA.

出版信息

Nature. 2022 Apr;604(7906):463-467. doi: 10.1038/s41586-022-04500-y. Epub 2022 Apr 20.

Abstract

Precisely engineered mechanical oscillators keep time, filter signals and sense motion, making them an indispensable part of the technological landscape of today. These unique capabilities motivate bringing mechanical devices into the quantum domain by interfacing them with engineered quantum circuits. Proposals to combine microwave-frequency mechanical resonators with superconducting devices suggest the possibility of powerful quantum acoustic processors. Meanwhile, experiments in several mechanical systems have demonstrated quantum state control and readout, phonon number resolution and phonon-mediated qubit-qubit interactions. At present, these acoustic platforms lack processors capable of controlling the quantum states of several mechanical oscillators with a single qubit and the rapid quantum non-demolition measurements of mechanical states needed for error correction. Here we use a superconducting qubit to control and read out the quantum state of a pair of nanomechanical resonators. Our device is capable of fast qubit-mechanics swap operations, which we use to deterministically manipulate the mechanical states. By placing the qubit into the strong dispersive regime with both mechanical resonators simultaneously, we determine the phonon number distributions of the resonators by means of Ramsey measurements. Finally, we present quantum tomography of the prepared nonclassical and entangled mechanical states. Our result represents a concrete step towards feedback-based operation of a quantum acoustic processor.

摘要

经过精确设计的机械振荡器可以计时、滤波和感测运动,成为当今技术领域不可或缺的一部分。这些独特的功能促使人们通过将机械装置与工程量子电路相连接,将其引入量子领域。将微波频率机械谐振器与超导器件相结合的方案表明,强大的量子声学处理器具有实现的可能性。同时,在几个机械系统中的实验已经证明了量子态的控制和读出、声子数分辨率和声子介导的量子比特-量子比特相互作用。目前,这些声学平台缺乏能够用单个量子比特控制多个机械振荡器的量子态,以及用于纠错的机械态的快速量子非破坏性测量的处理器。在这里,我们使用超导量子比特来控制和读出一对纳米机械谐振器的量子态。我们的设备能够实现快速的量子比特-机械交换操作,我们利用这些操作来确定性地操纵机械状态。通过同时将量子比特置于两个机械谐振器的强色散区域,我们通过 Ramsey 测量确定了谐振器的声子数分布。最后,我们展示了所制备的非经典和纠缠机械态的量子层析成像。我们的结果代表了朝着基于反馈的量子声学处理器操作迈出的具体一步。

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