Experimental composable key distribution using discrete-modulated continuous variable quantum cryptography
arXiv:2410.13702 · doi:10.1038/s41377-025-01924-9
Abstract
Establishing secure data communication necessitates secure key exchange over a public channel. Quantum key distribution (QKD), which leverages the principles of quantum physics, can achieve this with information-theoretic security. The discrete modulated (DM) continuous variable (CV) QKD protocol, in particular, is a suitable candidate for large-scale deployment of quantum-safe communication due to its simplicity and compatibility with standard high-speed telecommunication technology. Here, we present the first experimental demonstration of a four-state DM CVQKD system, successfully generating composable finite-size keys, secure against collective attacks over a 20 km fiber channel with 2.3 \times 10^{9} coherent quantum states, achieving a positive composable key rate of 11.04 \times 10^{-3} bits/symbol. This accomplishment is enabled by using an advanced security proof, meticulously selecting its parameters, and the fast, stable operation of the system. Our results mark a significant step toward the large-scale deployment of practical, high-performance, cost-effective, and highly secure quantum key distribution networks using standard telecommunication components.
References in corpus (3)
- Composable security proof for continuous-variable quantum key distribution with coherent states
- Security of Binary Modulated Continuous Variable Quantum Key Distribution under Collective Attacks
- Composable security for continuous variable quantum key distribution: Trust levels and practical key rates in wired and wireless networks
Cited by in corpus (4)
- Continuous-variable quantum communication
- State Transfer in Latent-Symmetric Networks
- Finite-size secret-key rates of discrete modulation continuous-variable quantum key distribution under Gaussian attacks
- Continuous-Variable Quantum Key Distribution with Composable Security and Tight Error Correction Bound towards Constrained-Device Implementations