37
collaborators
2018–2025
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Continuous variable quantum key distribution multiplexed with high throughput coherent channels | QCRYPT 2019 | regular | Tobias Eriksson, Takuya Hirano, Benjamin Puttnam, Georg Rademacher, Mikio Fujiwara, Ryo Namiki, Yoshinari Awaji, Masahiro Takeoka, Naoya Wada, Masahide Sasaki |
We show joint propagation of CV-QKD with successful secret key generation over 24 hours with 100 state-of-the-art EDFA amplified coherent WDM channels amounting to a total classical bitrate of 18.3~Tbit/s. |
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2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Field Trial of Quantum Key Distribution and 110 Tb/s Classical Data Co-Transmission over Multi-Core Fibers | QCRYPT 2025 | Qi Wu, Cristian Antonelli, Domenico Ribezzo, Antonio Mecozzi, Giammarco Di Sciullo, Divya A. Shaji, Lucas A. Zischler, Andrea Marotta, Fabio Graziosi, Sebastiano Cocchi, Davide Bacco, Tetsuya Hayashi, Paolo Serena, Chiara Lasagni, Alberto Bononi, Alberto Gatto, Paola Parolari, Paolo Martelli, Pierpaolo Boffi, Alessandro Gagliano, Alessandro Zavatta, Mark Shtaif, Weisheng Hu, Yixiao Zhu, Zhaopeng Xu |
Ensuring information privacy in modern communication systems has become increasingly critical. Quantum key distribution (QKD), leveraging the principles of quantum mechanics, provides information-theoretically secure key sharing and has matured into the most advanced quantum communication application. Despite successful demonstrations and emerging commercial deployments, the widespread adoption of QKD is hindered by the high cost of building dedicated quantum networks. A promising and cost-effective alternative is the integration of QKD into classical fiber-optic infrastructure, particularly using standard single-mode fibers. However, this approach is limited by noise and nonlinear effects such as spontaneous Raman scattering. Recent advancements in space-division multiplexing (SDM) have led to the development of uncoupled-core multi-core fibers (MCFs), which offer spatial separation between quantum and classical signals, mitigating interference. While previous QKD-MCF coexistence studies have been restricted to lab environments and non-standard large-diameter fibers, we demonstrate, for the first time, the coexistence of QKD and classical communication channels, in a realistic field-deployed scenario. One of the cores was dedicated to QKD and the other cores to classical transmission. The system was tested with 110-Tb/s traffic over 25.2 km of field-deployed MCF with a 125-µm cladding. Our results mark a significant step forward in integrating QKD with classical communication based on uncoupled-core MCF technology. |
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| Continuous Variable Quantum Key Distribution Multiplexed with Classical Channels | QCRYPT 2018 | Tobias Eriksson, Takuya Hirano, Georg Rademacher, Benjamin Puttnam, Mikio Fujiwara, Ryo Namiki, Ken-Ichiro Yoshino, Akio Tajima, Yoshinari Awaji, Masahiro Takeoka, Naoya Wada, Masahide Sasaki |
Collaborators
| Co-author | Joint talks |
|---|---|
| Benjamin Puttnam | 2 |
| Georg Rademacher | 2 |
| Masahide Sasaki | 2 |
| Masahiro Takeoka | 2 |
| Mikio Fujiwara | 2 |
| Naoya Wada | 2 |
| Ryo Namiki | 2 |
| Takuya Hirano | 2 |
| Tobias Eriksson | 2 |
| Yoshinari Awaji | 2 |
| Akio Tajima | 1 |
| Alberto Bononi | 1 |
| Alberto Gatto | 1 |
| Alessandro Gagliano | 1 |
| Alessandro Zavatta | 1 |
| Andrea Marotta | 1 |
| Antonio Mecozzi | 1 |
| Chiara Lasagni | 1 |
| Cristian Antonelli | 1 |
| Davide Bacco | 1 |