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Storage and retrieval of single photons transmitted between remote quantum memories

机译:存储和检索在远程量子存储器之间传输的单个光子

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An elementary quantum network operation involves storing a qubit state in an atomic quantum memory node, and then retrieving and transporting the information through a single photon excitation to a remote quantum memory node for further storage or analysis. Implementations of quantum network operations are thus conditioned on the ability to realize matter-to-light and/or light-to-matter quantum state mappings. Here we report the generation, transmission, storage and retrieval of single quanta using two remote atomic ensembles. A single photon is generated from a cold atomic ensemble at one site 1, and is directed to another site through 100 metres of optical fibre. The photon is then converted into a single collective atomic excitation using a dark-state polariton approach(2). After a programmable storage time, the atomic excitation is converted back into a single photon. This is demonstrated experimentally, for a storage time of 0.5 microseconds, by measurement of an anti-correlation parameter. Storage times exceeding ten microseconds are observed by intensity cross-correlation measurements. This storage period is two orders of magnitude longer than the time required to achieve conversion between photonic and atomic quanta. The controlled transfer of single quanta between remote quantum memories constitutes an important step towards distributed quantum networks.
机译:基本量子网络操作涉及将量子位状态存储在原子量子存储节点中,然后通过单光子激发检索信息并将其传输到远程量子存储节点以进行进一步存储或分析。因此,量子网络操作的实现以实现光到物质和/或光到物质的量子状态映射的能力为条件。在这里,我们报告使用两个远程原子集合的单个量子的生成,传输,存储和检索。从一个位置1处的冷原子集合体生成一个光子,并通过100米的光纤将其引导到另一个位置。然后,使用暗态极化方法将光子转换为单个集体原子激发(2)。经过可编程的存储时间后,原子激发被转换回单个光子。通过测量反相关参数,可以在0.5微秒的存储时间中通过实验证明这一点。通过强度互相关测量观察到超过十微秒的存储时间。该存储周期比实现光子和原子量子之间的转换所需的时间长两个数量级。单个量子在远程量子存储器之间的受控传输构成了迈向分布式量子网络的重要一步。

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