Satellite Relayed Global Quantum Communication without Quantum Memory
Sumit Goswami, Sayandip Dhara

TL;DR
This paper proposes a satellite chain with optical lenses to significantly reduce photon loss in global quantum communication, enabling robust, memory-free quantum links over thousands of kilometers.
Contribution
It introduces a novel satellite-based optical relay system that nearly eliminates diffraction loss, allowing for low-loss, memory-free quantum communication over global distances.
Findings
Diffraction loss can be almost eliminated at 20,000 km with satellite lenses.
Total loss estimated to be less than 30 dB at 20,000 km with proper constraints.
The proposed protocol enables robust, multi-mode quantum communication without quantum memories.
Abstract
Photon loss is the fundamental issue towards the development of quantum communication. We present a proposal to mitigate photon loss even at large distances and hence to create a global-scale quantum communication architecture. In this proposal, photons are sent directly through space, using a chain of co-moving low-earth orbit satellites. This satellite chain would bend the photons to move along the earth's curvature and control photon loss due to diffraction by effectively behaving like a set of lenses on an optical table. Numerical modeling of photon propagation through these "satellite lenses" shows that diffraction loss in entanglement distribution can be almost eliminated even at global distances of 20,000 km while considering beam truncation at each satellite and the effect of different errors. In the absence of diffraction loss, the effect of other losses (especially reflection…
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Taxonomy
TopicsOptical Wireless Communication Technologies · Satellite Communication Systems · Spacecraft Dynamics and Control
