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Measurement-induced entanglement for excitation stored in remote atomic ensembles

机译:测量引起的激发纠缠存储在远程原子团中

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A critical requirement for diverse applications in quantum information science is the capability to disseminate quantum resources over complex quantum networks(1,2). For example, the coherent distribution of entangled quantum states together with quantum memory ( for storing the states) can enable scalable architectures for quantum computation(3), communication(4) and metrology(5). Here we report observations of entanglement between two atomic ensembles located in distinct, spatially separated set-ups. Quantum interference in the detection of a photon emitted by one of the samples projects the otherwise independent ensembles into an entangled state with one joint excitation stored remotely in 10(5) atoms at each site(6). After a programmable delay, we confirm entanglement by mapping the state of the atoms to optical fields and measuring mutual coherences and photon statistics for these fields. We thereby determine a quantitative lower bound for the entanglement of the joint state of the ensembles. Our observations represent significant progress in the ability to distribute and store entangled quantum states.
机译:量子信息科学中各种应用的关键要求是能够在复杂的量子网络上传播量子资源(1,2)。例如,纠缠的量子态与量子存储器(用于存储状态)的相干分布可以实现用于量子计算(3),通信(4)和计量学(5)的可扩展架构。在这里,我们报告了位于不同的,空间上分开的结构中的两个原子团之间的纠缠观察。在检测其中一个样品发出的光子时,量子干扰将原本独立的集合投射到一个纠缠态,其中一个联合激发在每个位点(6)处远距离存储在10(5)个原子中。经过可编程的延迟后,我们通过将原子的状态映射到光场并测量这些场的相干性和光子统计来确认纠缠。因此,我们确定了乐团整体状态纠缠的定量下界。我们的观察结果表明,在分布和存储纠缠量子态的能力方面取得了重大进展。

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