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arxiv: 1708.02407 · v1 · pith:7WG6MNI4new · submitted 2017-08-08 · ❄️ cond-mat.quant-gas · quant-ph

Spatially distributed multipartite entanglement enables Einstein-Podolsky-Rosen steering of atomic clouds

classification ❄️ cond-mat.quant-gas quant-ph
keywords entanglementspatiallyatomicdistributedeinstein-podolsky-rosensteeringcloudseparated
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A key resource for distributed quantum-enhanced protocols is entanglement between spatially separated modes. Yet, the robust generation and detection of nonlocal entanglement between spatially separated regions of an ultracold atomic system remains a challenge. Here, we use spin mixing in a tightly confined Bose-Einstein condensate to generate an entangled state of indistinguishable particles in a single spatial mode. We show experimentally that this local entanglement can be spatially distributed by self-similar expansion of the atomic cloud. Spatially resolved spin read-out is used to reveal a particularly strong form of quantum correlations known as Einstein-Podolsky-Rosen steering between distinct parts of the expanded cloud. Based on the strength of Einstein-Podolsky-Rosen steering we construct a witness, which testifies up to genuine five-partite entanglement.

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