English

Satellite-to-Earth Quantum Key Distribution via Orbital Angular Momentum

Quantum Physics 2020-12-11 v3

Abstract

In this work, we explore the feasibility of performing satellite-to-Earth quantum key distribution (QKD) using the orbital angular momentum (OAM) of light. Due to the fragility of OAM states the conventional wisdom is that turbulence would render OAM-QKD non-viable in a satellite-to-Earth channel. However, based on detailed phase screen simulations of the anticipated atmospheric turbulence we find that OAM-QKD is viable in some system configurations, especially if quantum channel information is utilized in the processing of post-selected states. More specifically, using classically entangled light as a probe of the quantum channel, and reasonably-sized transmitter-receiver apertures, we find that non-zero QKD rates are achievable on sea-level ground stations. Without using classical light probes, OAM-QKD is relegated to high-altitude ground stations with large receiver apertures. Our work represents the first quantitative assessment of the performance of OAM-QKD from satellites, showing under what circumstances the much-touted higher dimensionality of OAM can be utilized in the context of secure communications.

Keywords

Cite

@article{arxiv.2007.07748,
  title  = {Satellite-to-Earth Quantum Key Distribution via Orbital Angular Momentum},
  author = {Ziqing Wang and Robert Malaney and Benjamin Burnett},
  journal= {arXiv preprint arXiv:2007.07748},
  year   = {2020}
}

Comments

15 pages, 8 figures. Manuscript improved (mainly some symbol changes) for better clarity. Comments are welcome

R2 v1 2026-06-23T17:08:31.509Z