Combining Quantum Cryptographic Primitives with Highly-Efficient Cold-Atom-Based Quantum Memory

2023 Conference on Lasers and Electro-Optics Europe & European Quantum Electronics Conference (CLEO/Europe-EQEC)(2023)

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摘要
In order to build long-distance quantum communications, quantum memories are required as a synchronization tool which allows entanglement to be stored and retrieved on-demand, when the system is ready to perform entanglement swapping [1]. The storage-and-retrieval efficiency is a key parameter: an increase from 60% to 90% drastically decreases, typically by 2 orders of magnitude, the average time for entanglement distribution over a distance of 600 kilometers. Within this context, we reported quantum transfer between light and cold-atom-based quantum memory featuring a single mode storage-and-retrieval efficiency as high as 87%(±5%), in the single excitation regime [2]. Moreover, we demonstrated the storage of single-photon entanglement into two memories, with a ratio of the input and output concurrences reaching 88%, a more than three-fold increase compared to prior works (Fig. 1). The demonstrated capability required operating at a very large optical depth (OD) of the atomic ensembles on the $D_{1}$ line of cesium, and with a strong and preserved suppression of the two-photon component.
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atomic ensembles,D1 line,entanglement distribution,entanglement swapping,highly-efficient cold-atom-based quantum memory,long-distance quantum communications,mode storage,optical depth,quantum cryptographic primitives,quantum transfer,single excitation regime,single-photon entanglement,storage-and-retrieval efficiency,synchronization tool,two-photon component
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