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Genuine Tripartite Entanglement and Nonlocality in Bose-Einstein Condensates by Collective Atomic Recoil

机译:集体原子反冲在玻色-爱因斯坦凝聚物中的真正三方纠缠和非局部性

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We study a system represented by a Bose-Einstein condensate interacting with a cavity field in presence of a strong off-resonant pumping laser. This system can be described by a three-mode Gaussian state, where two are the atomic modes corresponding to atoms populating upper and lower momentum sidebands and the third mode describes the scattered cavity field light. We show that, as a consequence of the collective atomic recoil instability, these modes possess a genuine tripartite entanglement that increases unboundedly with the evolution time and is larger than the bipartite entanglement in any reduced two-mode bipartition. We further show that the state of the system exhibits genuine tripartite nonlocality, which can be revealed by a robust violation of the Svetlichny inequality when performing displaced parity measurements. Our exact results are obtained by exploiting the powerful machinery of phase-space informational measures for Gaussian states, which we briefly review in the opening sections of the paper.
机译:我们研究了一个由玻色-爱因斯坦凝聚物与腔场相互作用的系统,该系统在强非共振泵浦激光器的作用下发生。该系统可以用三模式高斯状态来描述,其中两个是对应于在上下动量边带中填充的原子的原子模式,而第三模式则描述了散射腔场光。我们表明,由于集体原子后坐力的不稳定性,这些模式具有真正的三方纠缠,该纠缠随演化时间无限制地增加,并且在任何缩减的双模二分分裂中均大于二分纠缠。我们进一步表明,该系统的状态显示出真正的三方非局部性,这可以通过在进行位移奇偶校验测量时强烈违反Svetlichny不等式来揭示。我们利用高斯状态相空间信息测量的强大机制来获得准确的结果,我们将在本文的开头部分对此进行简要回顾。

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