Optimal design and performance evaluation of free-space Quantum Key Distribution systems
arXiv:2109.13886 · doi:10.1088/2058-9565/ac8760
Abstract
Free-space ground-to-ground links will be an integral part of future quantum communication networks. The implementation of free-space and fiber links in daylight inter-modal configurations are however still hard to achieve, due to the impact of atmospheric turbulence, which strongly decreases the coupling efficiency into the fiber. In this work, we present a comprehensive model of the performance of a free-space ground-to-ground quantum key distribution (QKD) system based on the efficient-BB84 protocol with active decoy states. Our model takes into account the atmospheric channel contribution, the transmitter and receiver telescope design constraints, the parameters of the quantum source and detectors, and the finite-key analysis to produce a set of requirements and optimal design choices for a QKD system operating under specific channel conditions. The channel attenuation is calculated considering all effects deriving from the atmospheric propagation (absorption, beam broadening, beam wandering, scintillation, and wavefront distortions), as well as the effect of fiber-coupling in the presence of a partial adaptive correction with finite control bandwidth. We find that the channel fluctuation statistics must be considered to correctly estimate the effect of the saturation rate of the single-photon detectors, which may otherwise lead to an overestimation of the secret key rate. We further present strategies to minimize the impact of diffuse atmospheric background in daylight operation by means of spectral and temporal filtering.
improved version
References in corpus (9)
- The Quantum Internet
- Satellite-to-ground quantum key distribution
- Free-Space distribution of entanglement and single photons over 144 km
- Progress in satellite quantum key distribution
- Quantum cryptography with finite resources: unconditional security bound for discrete-variable protocols with one-way post-processing
- Provably-Secure and High-Rate Quantum Key Distribution with Time-Bin Qudits
- Experimental quantum key distribution beyond the repeaterless secret key capacity
- All-fiber self-compensating polarization encoder for Quantum Key Distribution
- Stable, low-error and calibration-free polarization encoder for free-space quantum communication
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- International time transfer between precise timing facilities secured with a quantum key distribution network
- Simulation of satellite and optical link dynamics in a quantum repeater constellation
- Global-scale quantum networking using hybrid-channel quantum repeaters with relays based on a chain of balloons