Pilot-reference-free continuous-variable quantum key distribution with efficient decoy-state analysis

ORAL

Abstract

Continuous-variable quantum key distribution (CV QKD) using optical coherent detectors is practically favorable due to its low implementation cost, flexibility of wavelength division multiplexing and compatibility with standard coherent communication technologies. However, the security analysis and parameter estimation of CV QKD are complicated due to the infinite-dimensional latent Hilbert space. Also, the transmission of strong reference pulses undermines the security and complicates the experiments.

To tackle these two problems, we present a time-bin-encoding CV protocol with a simple phase-error-based security analysis valid under general coherent attacks. With the key encoded into the relative intensity between two optical modes, the need for global references is removed. Furthermore, phase randomization can be introduced to decouple the security analysis of different photon-number components. We can hence tag the photon number for each round, effectively estimate the associated privacy using a carefully designed coherent-detection method, and independently extract encryption keys from each component.

Simulations manifest that our protocol using multi-photon components increases the key rate by two orders of magnitude compared to the one using only the single-photon component. Meanwhile, the protocol with four-intensity decoy analysis is sufficient to yield tight parameter estimation with a short-distance key-rate performance comparable to the best Bennett-Brassard-1984 implementation.

Publication: https://doi.org/10.48550/arXiv.2309.03789

Presenters

  • Pei Zeng

    University of Chicago

Authors

  • Pei Zeng

    University of Chicago

  • Anran Jin

    University of Cambridge

  • Xingjian Zhang

    University of Science and Technology of China

  • Liang Jiang

    University of Chicago

  • Richard V Penty

    University of Cambridge