Twin-field quantum key distribution with partial phase postselection
arXiv:2211.12688 · doi:10.1103/PhysRevApplied.18.054026
Abstract
Quantum key distribution (QKD) allows two remote parties to share information-theoretically secure keys. In recent years, a revolutionary breakthrough called twin-field (TF) QKD has been developed to overcome the linear key-rate constraint and greatly increases the achievable distance. Phase-randomization and subsequent postselection play important roles in its security proof. Later, no-phase-postselection TF-QKD was proposed and became a popular variant, since the removal of phase postselection leads to a higher key rate. However, the achievable distance is decreased compared to the original one. Here, we propose a TF-QKD protocol with partial phase postselection. Namely, its code mode is still free from global phase randomization and postselection to make sure the advantage of the high key rate remains. On other hand, phase postselection is introduced in the decoy mode to improve the performance. Applying an operator dominance condition, we prove universal security of the proposed protocol in the finite-key case under coherent attacks, and numerical simulations confirm its potential advantages in terms of key rate and achievable distance.
References in corpus (11)
- Satellite-to-ground quantum key distribution
- Measurement device independent quantum key distribution over 404 km optical fibre
- Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum Key Distribution Over 509 km
- Experimental Long-Distance Decoy-State Quantum Key Distribution Based On Polarization Encoding
- Long distance decoy state quantum key distribution in optical fiber
- Experimental quantum key distribution beyond the repeaterless secret key capacity
- Measurement-device-independent quantum key distribution over 200 km
- 2-GHz clock quantum key distribution over 260 km of standard telecom fiber
- Beating the fundamental rate-distance limit in a proof-of-principle quantum key distribution system
- Composability in quantum cryptography
- Finite-key security against coherent attacks in quantum key distribution