16
collaborators
2025–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Towards a Versatile Continuous-Variable Quantum Key Distribution Transceiver for Reconfigurable Networks | QCRYPT 2026 | Tommaso Bertapelle, Alexis Rosio, Giuseppe Vallone, Eleni Diamanti, Paolo Villoresi, Marco Avesani, Yoann Piétri |
Key exchange over an untrusted communication channel is a crucial step in modern cryptographic protocols, yet current approaches rely on computational assumptions to ensure their security. However, these assumptions may be undermined by an adversary possessing quantum computational capabilities. Quantum Key Distribution (QKD), both in its Discrete Variable (DV) and Continuous Variable (CV) format, is a way to counter this threat. By exploiting the principles of quantum mechanics, QKD enables the development of unconditionally secure protocols, providing a lasting solution that can withstand adversaries regardless of their computational resources. Between DV and CV, the latter is particularly appealing if speed and compatibility with the current fiber telecom infrastructure are considered. In fact, CV-QKD systems can benefit from coherent receivers and widely accessible fiber-based commercial telecom components. Despite this, several practical tasks must be addressed to enable such systems targeting field-deployed real-world scenarios. Among these are the integration of a Quantum Random Number Generator, real-time estimation of key system parameters necessary to compute the Secret Key Rate and network reconfigurability. This study presents a CV-QKD architecture integrating a coherent receiver at the transmitter, enabling secure quantum randomness generation and in-line estimation of key parameters for secret-key-rate computation, advancing the deployment over existing telecom networks. |
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| Wavelength-Division Multiplexing of Independent CV- and DV-QKD Systems over Shared Fiber and Daylight Free-Space Links | QCRYPT 2026 | Mattia Sabatini, Edoardo Rossi, Matías R. Bolaños, Francesco Vedovato, Eleni Diamanti, Giuseppe Vallone, Paolo Villoresi, Yoann Piétri, Marco Avesani |
We report, to the best of our knowledge, the first experimental demonstration of wavelength-division multiplexing between independent continuous-variable (CV) and discrete-variable (DV) quantum key distribution (QKD) systems operating simultaneously on the same optical link. We validate coexistence over a fiber and a daylight free-space channel, benchmarking the Secret Key Rate (SKR) versus channel attenuation while both systems operate simultaneously. We observe the expected CV-DV complementarity, with CV-QKD providing higher SKR at low loss and DV-QKD becoming advantageous in the high-loss regime. In free-space daylight, both systems sustain Mbit/s key rates under atmospheric fluctuations. In all scenarios analyzed, simultaneous operation introduces negligible multiplexing-induced penalty. These results provide a validation of hybrid CV-DV architectures for heterogeneous quantum communication infrastructures, where high-throughput metropolitan users and long-reach links can be simultaneously served on the same physical channel. |
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| Analysis of untrusted-node QKD from a geostationary satellite | QCRYPT 2025 | Daniele Dequal, Perrine Lognone, Matteo Schiavon, Caroline B. Lim, Eleni Diamanti, Jean-Marc Conan |
In this study, we constructed a full end-to-end atmospheric channel model for a GEO quantum exchange. This model allowed to assess the performances of two MDI-QKD protocols in such conditions : MP-QKD and TF-QKD, thus setting the limits of these protocols with current and future technology on detection, emission and optic tools. We demonstrated that an untrusted GEO link between two independent parties can be achieved when using reasonable size of telescope diameter. The key rates predicted would allow transmitting up to 260 bit/s for TF-QKD and up to 180 bit/s for MP-QKD for a telescope pupil diameter of 1m at 2.5 GHz of repetition rate. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Eleni Diamanti | 3 |
| Giuseppe Vallone | 2 |
| Marco Avesani | 2 |
| Paolo Villoresi | 2 |
| Yoann Piétri | 2 |
| Alexis Rosio | 1 |
| Caroline B. Lim | 1 |
| Daniele Dequal | 1 |
| Edoardo Rossi | 1 |
| Francesco Vedovato | 1 |
| Jean-Marc Conan | 1 |
| Matteo Schiavon | 1 |
| Mattia Sabatini | 1 |
| Matías R. Bolaños | 1 |
| Perrine Lognone | 1 |
| Tommaso Bertapelle | 1 |