Intermodal quantum key distribution over an 18 km free-space channel with adaptive optics and room-temperature detectors

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Hauptverfasser: Rossi, Edoardo, Karakosta-Amarantidou, Ilektra, Padovan, Matteo, Nardi, Marco, Avesani, Marco, Santagiustina, Francesco Bruno Leonardo, Taffarello, Marco, Vanzo, Antonio, Bonora, Stefano, Vallone, Giuseppe, Villoresi, Paolo, Vedovato, Francesco
Format: Preprint
Veröffentlicht: 2026
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author Rossi, Edoardo
Karakosta-Amarantidou, Ilektra
Padovan, Matteo
Nardi, Marco
Avesani, Marco
Santagiustina, Francesco Bruno Leonardo
Taffarello, Marco
Vanzo, Antonio
Bonora, Stefano
Vallone, Giuseppe
Villoresi, Paolo
Vedovato, Francesco
author_facet Rossi, Edoardo
Karakosta-Amarantidou, Ilektra
Padovan, Matteo
Nardi, Marco
Avesani, Marco
Santagiustina, Francesco Bruno Leonardo
Taffarello, Marco
Vanzo, Antonio
Bonora, Stefano
Vallone, Giuseppe
Villoresi, Paolo
Vedovato, Francesco
contents Intermodal quantum key distribution at telecom wavelengths provides a hybrid interface between fiber connections and free-space links, both essential for the realization of scalable and interoperable quantum networks. Although demonstrated over short-range free-space links, long-distance implementations of intermodal quantum key distribution remain challenging, due to turbulence-induced wavefront aberrations which limit efficient single-mode fiber coupling at the optical receiver. Here, we demonstrate a real-time intermodal quantum key distribution field trial over an 18 km free-space link, connecting a remote terminal to an urban optical ground station equipped with a 40 cm-class telescope. An adaptive optics system, implementing direct wavefront sensing and high-order aberration correction, enables efficient single-mode fiber coupling and allows secure key generation of 200 bit/s using a compact state analyzer equipped with room-temperature detectors. We further validate through experimental data a turbulence-based model for predicting fiber coupling efficiency, providing practical design guidelines for future intermodal quantum networks.
format Preprint
id arxiv_https___arxiv_org_abs_2602_16680
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Intermodal quantum key distribution over an 18 km free-space channel with adaptive optics and room-temperature detectors
Rossi, Edoardo
Karakosta-Amarantidou, Ilektra
Padovan, Matteo
Nardi, Marco
Avesani, Marco
Santagiustina, Francesco Bruno Leonardo
Taffarello, Marco
Vanzo, Antonio
Bonora, Stefano
Vallone, Giuseppe
Villoresi, Paolo
Vedovato, Francesco
Quantum Physics
Intermodal quantum key distribution at telecom wavelengths provides a hybrid interface between fiber connections and free-space links, both essential for the realization of scalable and interoperable quantum networks. Although demonstrated over short-range free-space links, long-distance implementations of intermodal quantum key distribution remain challenging, due to turbulence-induced wavefront aberrations which limit efficient single-mode fiber coupling at the optical receiver. Here, we demonstrate a real-time intermodal quantum key distribution field trial over an 18 km free-space link, connecting a remote terminal to an urban optical ground station equipped with a 40 cm-class telescope. An adaptive optics system, implementing direct wavefront sensing and high-order aberration correction, enables efficient single-mode fiber coupling and allows secure key generation of 200 bit/s using a compact state analyzer equipped with room-temperature detectors. We further validate through experimental data a turbulence-based model for predicting fiber coupling efficiency, providing practical design guidelines for future intermodal quantum networks.
title Intermodal quantum key distribution over an 18 km free-space channel with adaptive optics and room-temperature detectors
topic Quantum Physics
url https://arxiv.org/abs/2602.16680