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Memory-assisted quantum key distribution resilient against multiple-excitation effects

DOI:10.1088/2058-9565/aa9cfb 期刊:Quantum Science and Technology 出版年份:2018 更新时间:2025-09-23 15:22:29
摘要: Memory-assisted measurement-device-independent quantum key distribution (MA-MDI-QKD) has recently been proposed as a technique to improve the rate-versus-distance behavior of QKD systems by using existing, or nearly-achievable, quantum technologies. The promise is that MA-MDI-QKD would require less demanding quantum memories than the ones needed for probabilistic quantum repeaters. Nevertheless, early investigations suggest that, in order to beat the conventional memory-less QKD schemes, the quantum memories used in the MA-MDI-QKD protocols must have high bandwidth-storage products and short interaction times. Among different types of quantum memories, ensemble-based memories offer some of the required specifications, but they typically suffer from multiple excitation effects. To avoid the latter issue, in this paper, we propose two new variants of MA-MDI-QKD both relying on single-photon sources for entangling purposes. One is based on known techniques for entanglement distribution in quantum repeaters. This scheme turns out to offer no advantage even if one uses ideal single-photon sources. By finding the root cause of the problem, we then propose another setup, which can outperform single memory-less setups even if we allow for some imperfections in our single-photon sources. For such a scheme, we compare the key rate for different types of ensemble-based memories and show that certain classes of atomic ensembles can improve the rate-versus-distance behavior.
作者: Nicolò Lo Piparo,Neil Sinclair,Mohsen Razavi
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To improve the rate-versus-distance behavior of QKD systems by proposing new variants of MA-MDI-QKD that rely on single-photon sources to mitigate multiple-excitation effects in ensemble-based quantum memories.

The quasi-EPR-based MA-MDI-QKD setup can outperform memory-less QKD systems by improving the rate-versus-distance scaling, even with non-ideal single-photon sources. Certain ensemble-based quantum memories, particularly warm vapor and cold atom types with enhanced properties, show promise for practical applications. The study identifies key parameters for future experimental demonstrations and highlights the potential for quantum repeaters in long-distance secure communication.

The study is theoretical and numerical, lacking experimental validation. Limitations include assumptions of ideal conditions in some analyses, sensitivity to device imperfections (e.g., multi-photon emissions, bandwidth mismatches), and the need for high-performance quantum memories that may not be fully achievable with current technology. The NLA-based scheme does not outperform memory-less systems, and practical implementations face challenges with noise and efficiency.

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