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Long-range photonic device-independent quantum key distribution using spontaneous parametric down-conversion sources and linear optics
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Authors: Morteza Moradi, Maryam Afsary, Piotr Mironowicz, Enky Oudot, Magdalena Stobińska-Moretto
Year
2026
Paper ID
72002
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
125
Citations
N/A
Abstract
We address the question of the implementation of long-distance device-independent quantum key distribution (DI QKD) by proposing two experimentally viable schemes. Those schemes use only spontaneous parametric down-conversion sources and linear optics. They achieve favorable key rate scaling proportional to the square root of channel transmittance η_{t}, matching the twin-field protocol advantage. We demonstrate positive asymptotic key rates at detector efficiencies as low as 80%, bringing DI QKD within the reach of current superconducting detector technology. Our security analysis employs the entropy accumulation theorem to establish rigorous finite-size bounds, achieving finite-key rates at a detector efficiency of 90%. This work represents a critical milestone toward device-independent security in quantum communication networks, providing experimentalists with practical implementation pathways while maintaining the strongest possible security guarantees against quantum adversaries.
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- This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
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- We address the question of the implementation of long-distance device-independent quantum key distribution (DI QKD) by proposing two experimentally viable schemes.
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