The ideal wavelength for daylight free-space quantum key distribution

Author:

Abasifard Mostafa12ORCID,Cholsuk Chanaprom12ORCID,Pousa Roberto G.3ORCID,Kumar Anand12ORCID,Zand Ashkan12ORCID,Riel Thomas4ORCID,Oi Daniel K. L.35ORCID,Vogl Tobias12ORCID

Affiliation:

1. Abbe Center of Photonics, Institute of Applied Physics, Friedrich Schiller University Jena 1 , 07745 Jena, Germany

2. Department of Computer Engineering, School of Computation, Information and Technology, Technical University of Munich 2 , 80333 Munich, Germany

3. Computational Nonlinear and Quantum Optics, SUPA Department of Physics, University of Strathclyde 3 , Glasgow G4 0NG, United Kingdom

4. University of Applied Sciences Wiener Neustadt 4 , 2700 Wiener Neustadt, Austria

5. Walton Institute for Information and Communication Systems Science, South East Technological University 5 , Waterford X91 P20H, Ireland

Abstract

Quantum key distribution (QKD) has matured in recent years from laboratory proof-of-principle demonstrations to commercially available systems. One of the major bottlenecks is the limited communication distance in fiber networks due to the exponential signal damping. To bridge intercontinental distances, low Earth orbit satellites transmitting quantum signals over the atmosphere can be used. These free-space links, however, can only operate during the night, as the sunlight otherwise saturates the detectors used to measure the quantum states. For applying QKD in a global quantum internet with continuous availability and high data rates, operation during daylight is required. In this work, we model a satellite-to-ground quantum channel for different quantum light sources to identify the optimal wavelength for free-space QKD under ambient conditions. Daylight quantum communication is possible within the Fraunhofer lines or in the near-infrared spectrum, where the intrinsic background from the sun is comparably low. The highest annual secret key length considering the finite key effect is achievable at the Hα Fraunhofer line. More importantly, we provide the fundamental model that can be adapted, in general, to any other specific link scenario taking into account the required modifications. We also propose a true single-photon source based on a color center in hexagonal boron nitride coupled to a microresonator that can implement such a scheme. Our results can also be applied in roof-to-roof scenarios and are, therefore, relevant for near-future quantum networks.

Funder

Deutsche Forschungsgemeinschaft

Bundesministerium für Wirtschaft und Klimaschutz

Bundesministerium für Bildung und Forschung

Development and Promotion of Science and Technology Talents Project scholarship by the Royal Thai Government

Engineering and Physical Sciences Research Council

UK NQTP

EPSRC Research Excellence AwardStudentship

SUPA Saltire Emerging Research Visits Scheme

Publisher

AIP Publishing

Reference70 articles.

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