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Reduction of the radiative decay of atomic coherence in squeezed vacuum

机译:压缩真空中原子相干辐射衰减的减少

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摘要

Quantum fluctuations of the electromagnetic vacuum are responsible for physical effects such as the Casimir force and the radiative decay of atoms, and set fundamental limits on the sensitivity of measurements. Entanglement between photons can produce correlations that result in a reduction of these fluctuations below the ordinary vacuum level, allowing measurements that surpass the standard quantum limit in sensitivity. The effects of such 'squeezed states' of light on matter were first considered in a prediction of the radiative decay rates of atoms in squeezed vacuum. Despite efforts to demonstrate such effects in experiments with natural atoms, a direct quantitative observation of this prediction has remained elusive. Here we report a twofold reduction of the transverse radiative decay rate of a superconducting artificial atom coupled to continuum squeezed vacuum. The artificial atom is effectively a two-level system formed by the strong interaction between a superconducting circuit and a microwave-frequency cavity. A Josephson parametric amplifier is used to generate quadrature-squeezed electromagnetic vacuum. The observed twofold reduction in the decay rate of the atom allows the transverse coherence time, T_2, to exceed the ordinary vacuum decay limit, 2T_1. We demonstrate that the measured radiative decay dynamics can be used to reconstruct the Wigner distribution of the itinerant squeezed state. Our results confirm a canonical prediction of quantum optics and should enable new studies of the quantum light-matter interaction.
机译:电磁真空的量子涨落引起诸如卡西米尔力和原子的辐射衰减之类的物理效应,并为测量的灵敏度设置了基本限制。光子之间的纠缠会产生相关性,从而将这些波动减小到低于正常真空水平,从而使测量结果的灵敏度超过标准的量子极限。在预测压缩真空中原子的辐射衰减率时,首先考虑了这种“压缩态”的光对物质的影响。尽管努力在天然原子的实验中证明这种效应,但是对这种预测的直接定量观察仍然难以捉摸。在这里,我们报告耦合到连续压缩真空的超导人工原子的横向辐射衰减速率的两倍降低。人造原子实际上是由超导电路和微波频率腔之间的强相互作用形成的两级系统。约瑟夫森参数放大器用于生成正交压缩的电磁真空。观察到的原子衰减速率的两倍降低允许横向相干时间T_2超过常规真空衰减极限2T_1。我们证明,所测得的辐射衰减动力学可用于重构巡回压缩状态的Wigner分布。我们的研究结果证实了量子光学的经典预测,并应使量子光与物质相互作用的新研究成为可能。

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  • 来源
    《Nature》 |2013年第7456期|62-65|共4页
  • 作者单位

    Quantum Nanoelectronics Laboratory, Department of Physics, University of California, Berkeley, California 94720, USA;

    Quantum Nanoelectronics Laboratory, Department of Physics, University of California, Berkeley, California 94720, USA;

    Department of Physics, MIT-Harvard Center for Ultracold Atoms, and Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA;

    Advanced Technology Institute and Department of Physics, University of Surrey, Guildford GU2 7XH, UK;

    Quantum Nanoelectronics Laboratory, Department of Physics, University of California, Berkeley, California 94720, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 02:53:37

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