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双原子的腔修饰集体瑞利散射。

Cavity-modified collective Rayleigh scattering of two atoms.

机构信息

Institut für Angewandte Physik, Universität Bonn, Wegelerstraße 8, 53115 Bonn, Germany.

Departement Physik, Universität Basel, Klingelbergstrasse 82, 4056 Basel, Switzerland.

出版信息

Phys Rev Lett. 2015 Jan 16;114(2):023601. doi: 10.1103/PhysRevLett.114.023601. Epub 2015 Jan 14.

Abstract

We report on the observation of cooperative radiation of exactly two neutral atoms strongly coupled to the single mode field of an optical cavity, which is close to the lossless-cavity limit. Monitoring the cavity output power, we observe constructive and destructive interference of collective Rayleigh scattering for certain relative distances between the two atoms. Because of cavity backaction onto the atoms, the cavity output power for the constructive two-atom case (N=2) is almost equal to the single-emitter case (N=1), which is in contrast to free-space where one would expect an N^{2} scaling of the power. These effects are quantitatively explained by a classical model as well as by a quantum mechanical model based on Dicke states. We extract information on the relative phases of the light fields at the atom positions and employ advanced cooling to reduce the jump rate between the constructive and destructive atom configurations. Thereby we improve the control over the system to a level where the implementation of two-atom entanglement schemes involving optical cavities becomes realistic.

摘要

我们报告了对两个中性原子的协同辐射的观测,这两个原子与光学腔的单模场强耦合,接近于无损耗腔极限。监测腔输出功率,我们观察到在两个原子之间的某些相对距离处,集体瑞利散射的相长和相消干涉。由于腔对原子的反作用,建设性的双原子情况(N=2)的腔输出功率几乎等于单发射器情况(N=1),这与自由空间中人们预期的功率 N^{2}缩放形成对比。这些效应通过基于狄克态的经典模型和量子力学模型得到了定量解释。我们提取了光场在原子位置处的相对相位信息,并采用先进的冷却技术降低建设性和破坏性原子构型之间的跃迁率。由此,我们将系统的控制提升到了一个可以实现涉及光学腔的双原子纠缠方案的水平。

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