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量子基态和机械谐振子的单声子控制。

Quantum ground state and single-phonon control of a mechanical resonator.

机构信息

Department of Physics, University of California, Santa Barbara, California 93106, USA.

出版信息

Nature. 2010 Apr 1;464(7289):697-703. doi: 10.1038/nature08967. Epub 2010 Mar 17.

Abstract

Quantum mechanics provides a highly accurate description of a wide variety of physical systems. However, a demonstration that quantum mechanics applies equally to macroscopic mechanical systems has been a long-standing challenge, hindered by the difficulty of cooling a mechanical mode to its quantum ground state. The temperatures required are typically far below those attainable with standard cryogenic methods, so significant effort has been devoted to developing alternative cooling techniques. Once in the ground state, quantum-limited measurements must then be demonstrated. Here, using conventional cryogenic refrigeration, we show that we can cool a mechanical mode to its quantum ground state by using a microwave-frequency mechanical oscillator-a 'quantum drum'-coupled to a quantum bit, which is used to measure the quantum state of the resonator. We further show that we can controllably create single quantum excitations (phonons) in the resonator, thus taking the first steps to complete quantum control of a mechanical system.

摘要

量子力学为各种物理系统提供了高度精确的描述。然而,要证明量子力学同样适用于宏观力学系统,一直是一个长期存在的挑战,这是因为将机械模式冷却到其量子基态非常困难。所需的温度通常远低于标准低温方法所能达到的温度,因此人们投入了大量精力来开发替代冷却技术。一旦进入基态,就必须证明量子限制测量。在这里,我们使用传统的低温制冷技术,展示了我们可以通过使用微波频率机械振荡器(“量子鼓”)将机械模式冷却到量子基态,该振荡器与量子位耦合,用于测量谐振器的量子状态。我们还进一步表明,我们可以在谐振器中可控地产生单个量子激发(声子),从而迈出了对机械系统进行完全量子控制的第一步。

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