Quantum key distribution surpassing the repeaterless rate-transmittance bound without global phase locking
arXiv:2201.04300 · doi:10.1038/s41467-022-31534-7
Abstract
Quantum key distribution -- the establishment of information-theoretically secure keys based on quantum physics -- is mainly limited by its practical performance, which is characterised by the dependence of the key rate on the channel transmittance . Recently, schemes based on single-photon interference have been proposed to improve the key rate to by overcoming the point-to-point secret key capacity bound with interferometers. Unfortunately, all of these schemes require challenging global phase locking to realise a stable long-arm single-photon interferometer with a precision of approximately 100 nm over fibres that are hundreds of kilometres long. Aiming to address this problem, we propose a mode-pairing measurement-device-independent quantum key distribution scheme in which the encoded key bits and bases are determined during data post-processing. Using conventional second-order interference, this scheme can achieve a key rate of without global phase locking when the local phase fluctuation is mild. We expect this high-performance scheme to be ready-to-implement with off-the-shelf optical devices.
56 pages, 24 figures. Comments are welcome
References in corpus (10)
- Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum Key Distribution Over 509 km
- Experimental quantum key distribution beyond the repeaterless secret key capacity
- Breaking the Rate-Loss Bound of Quantum Key Distribution with Asynchronous Two-Photon Interference
- 600 km repeater-like quantum communications with dual-band stabilisation
- Protocol choice and parameter optimization in decoy-state measurement-device-independent quantum key distribution
- Statistical fluctuation analysis for measurement-device-independent quantum key distribution
- Coherent phase transfer for real-world twin-field quantum key distribution
- Discrete-phase-randomized coherent state source and its application in quantum key distribution
- Gigahertz measurement-device-independent quantum key distribution using directly modulated lasers
- Composable security for practical quantum key distribution with two way classical communication
Cited by in corpus (52)
- Quantum repeaters: From quantum networks to the quantum internet
- Experimental Quantum Communication Overcomes the Rate-loss Limit without Global Phase Tracking
- Twin-field quantum key distribution without optical frequency dissemination
- Experimental mode-pairing measurement-device-independent quantum key distribution without global phase-locking
- Experimental quantum e-commerce
- Breaking Rate-Distance Limitation of Measurement-Device-Independent Quantum Secret Sharing
- One-Time Universal Hashing Quantum Digital Signatures without Perfect Keys
- Experimental demonstration of drone-based quantum key distribution
- A cost-efficient quantum access network with qubit-based synchronization
- Field test of mode-pairing quantum key distribution
- Advantages of Asynchronous Measurement-Device-Independent Quantum Key Distribution in Intercity Networks
- Asynchronous Quantum Repeater using Multiple Quantum Memory
- Breaking universal limitations on quantum conference key agreement without quantum memory
- Mode-pairing quantum key distribution with advantage distillation
- Scalable High-Rate Twin-Field Quantum Key Distribution Networks without Constraint of Probability and Intensity
- Repeater-like asynchronous measurement-device-independent quantum conference key agreement
- Boosting quantum key distribution via the end-to-end loss control
- Finite resource performance of small satellite-based quantum key distribution missions
- Overcoming fundamental bounds on quantum conference key agreement
- Finite-Key Analysis for Coherent One-Way Quantum Key Distribution
- Experimental Efficient Source-Independent Quantum Secret Sharing against Coherent Attacks
- Analysis for satellite-based high-dimensional extended B92 and high-dimensional BB84 quantum key distribution
- Multi-field quantum conferencing overcomes the network capacity limit
- Source-independent quantum secret sharing with entangled photon pair networks
- Towards Global Quantum Key Distribution
- Asymmetric mode-pairing quantum key distribution
- Suppression of patterning effect using IQ modulator for high-speed quantum key distribution systems
- Asynchronous measurement-device-independent quantum key distribution with hybrid source
- Experimental Measurement-Device-Independent Quantum Cryptographic Conferencing
- Asynchronous measurement-device-independent quantum digital signatures
- Multiplexed quantum repeaters based on single-photon interference with mild stabilization
- Robustness of entanglement-based discrete- and continuous-variable quantum key distribution against channel noise
- Experimental Coherent One-Way Quantum Key Distribution with Simplicity and Practical Security
- Advantage Distillation for Quantum Key Distribution
- Phase-Matching Quantum Key Distribution without Intensity Modulation
- Efficient source-independent quantum conference key agreement
- A consolidated and accessible security proof for finite-size decoy-state quantum key distribution
- Entanglement Model for Mode-Pairing Quantum Key Distribution
- Numerical security analysis for quantum key distribution with partial state characterization
- Source-Replacement Model for Phase-Matching Quantum Key Distribution
- Experimental Efficient Source-Independent Quantum Conference Key Agreement
- Towards efficient and secure quantum-classical communication networks
- Space-division multiplexed phase compensation for quantum communication: concept and field demonstration
- Research progress of artificial intelligence empowered quantum communication and quantum sensing systems
- Interference between distinguishable photons
- Hybrid classical-quantum communication networks
- Convert laser light into single photons via interference
- Pilot-reference-free continuous-variable quantum key distribution with efficient decoy-state analysis
- Scalable and Highly Fault-Tolerant Circular Quantum Byzantine Agreement
- Security Analysis of Mode-Pairing Quantum Key Distribution with Flexible Pairing Strategy
- Source-independent quantum key distribution without pre-sending entanglement
- Discrete-phase-randomized mode-pairing quantum key distribution