9
collaborators
2025–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Noise‑Robust O‑Band Quantum Key Distribution at 1295.56 nm for Coexistence in WDM Networks | QCRYPT 2026 | Alberto Boaron, Damien Stucki, Boris Korzh, Robert Thew, Gianluca Boso |
Integrating Quantum Key Distribution (QKD) into optical metropolitan networks is a crucial step toward bringing quantum technologies into existing telecommunication fiber infrastructures. However, current state-of-the-art solutions still face major challenges, including their sensitivity to classical noise, especially spontaneous Raman scattering, limited transmission distances, and performance degradation under heterogeneous network conditions. In this work, we present a new QKD system operating in the O-band at 1295.56 nm, where the effect of the main noise sources is significantly reduced. Combined with narrow spectral filtering at the receiver, without the need for active temperature control, the system shows strong robustness across a wide range of dense wavelength division multiplexing scenarios, making it a practical option for real-world deployment. We validate its performance through extensive testing and demonstrate stable key generation while coexisting with different classical traffic conditions, with total launch powers of up to 17 dBm. These results represent an important step forward for the integration of QKD into existing fiber networks, supporting the path toward secure quantum communications at scale. |
||
| Numerical security analysis for quantum key distribution with partial state characterization | QCRYPT 2025 | Guillermo Currás-Lorenzo, Álvaro Navarrete, Margarida Pereira, Marcos Curty |
Numerical security proofs offer a versatile approach for evaluating the secret-key generation rate of quantum key distribution (QKD) protocols. However, existing methods typically require perfect source characterization, which is unrealistic in practice due to the presence of inevitable encoding imperfections and side channels. In this paper, we introduce a novel security proof technique based on semidefinite programming that can evaluate the secret-key rate for both prepare-and-measure and measurement-device-independent QKD protocols when only partial information about the emitted states is available, significantly improving the applicability and practical relevance compared to existing numerical techniques. We demonstrate that our method can outperform current analytical approaches addressing partial state characterization in terms of achievable secret-key rates, particularly for protocols with non-qubit encoding spaces. This represents a significant step towards bridging the gap between theoretical security proofs and practical QKD implementations. |
||
Collaborators
| Co-author | Joint talks |
|---|---|
| Alberto Boaron | 1 |
| Boris Korzh | 1 |
| Damien Stucki | 1 |
| Gianluca Boso | 1 |
| Guillermo Currás-Lorenzo | 1 |
| Marcos Curty | 1 |
| Margarida Pereira | 1 |
| Robert Thew | 1 |
| Álvaro Navarrete | 1 |