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Information theoretic security of quantum key distribution overcoming the repeaterless secret key capacity bound
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Quantum key distribution is a way to distribute secret keys to distant users with information theoretic security and key rates suitable for real-world applications. Its rate-distance figure, however, is limited by the natural loss of the communication channel and can never surpass a theoretical limit known as point-to-point secret key capacity. Recently, a new type of quantum key distribution with an intermediate relay was proposed to overcome this limit (M. Lucamarini, Z. L. Yuan, J. F. Dynes and A. J. Shields, Nature, 2018). However, a standard application of the decoy state method limited the security analysis of this scheme to hold under restrictive assumptions for the eavesdropper. Hence, overcoming the point-to-point secret key capacity with an information-theoretic secure scheme is still an open question. Here, we propose a novel way to use decoy states to answer this question. The key idea is to switch between a Test mode and a Code mode, the former enabling the decoy state parameter estimation and the latter generating a key through a phase encoding protocol. This way, we confirm the scaling properties of the original scheme and overcome the secret key capacity at long distances. Our work plays a key role to unlock the potential of practical secure quantum communications.
Forward citations
Cited by 3 Pith papers
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Zigzag approach to higher key rate of sending-or-not-sending twin field quantum key distribution with finite key effects
The paper introduces a zigzag de Finetti-based bound on the phase-flip error of odd-parity post-selected bits, giving the best reported finite-key rates for SNS-TF QKD.
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Beating the repeaterless bound with adaptive measurement-device-independent quantum key distribution
The AMDI-QKD protocol cannot surpass the repeaterless key rate bound when the entanglement sources are standard parametric down-conversion sources.
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General sending-or-not-sending twin field protocol for quantum key distribution with asymmetric source parameters
A security proof and simulation show that SNS twin-field QKD can be run with fully asymmetric source parameters while retaining security and substantially improving key rates on asymmetric channels.
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