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Entanglement detection via atomic deflection

机译:通过原子偏转纠缠检测

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We report on criteria to detect entanglement between the light modes of two crossed optical cavities by analyzing the transverse deflection patterns of an atomic beam. The photon exchange between the modes and atoms occurs around the overlapping nodes of associated standing waves, which generates the two-dimensional (2D) version of the Optical Stern - Gerlach (OSG) effect. In this optical cross-cavity setup, we show that the discrete signatures of the field states, left in the momentum distribution of the deflected atoms, may reveal entanglement for a certain class of two-mode states. For a single photon, we present the possibility of quantifying entanglement by the rotation of the momentum distribution. For a larger number of photons, we demonstrate that quantum interference precludes the population of specific momentum states revealing maximum entanglement between the light modes. (C) 2017 Optical Society of America
机译:我们通过分析原子束的横向偏转图案来报告标准以检测两个交叉光学腔的光模式之间的缠结。 模式和原子之间的光子交换发生在相关驻波的重叠节点周围,这产生了光学船尾的二维(2D)版本 - Gerlach(OSG)效应。 在该光学横腔设置中,我们表明场状态的离散签名留在偏转原子的动量分布中,可以揭示某种类别态的缠结。 对于单个光子,我们通过旋转动量分布来呈现量化缠结的可能性。 对于较大数量的光子,我们证明量子干扰排除了特定动量状态的群体,揭示了光模式之间的最大缠结。 (c)2017年光学学会

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