Quantum key distribution (QKD) coexisting with ultra-high-capacity classical optical signals over the same fiber is widely regarded as a cornerstone of future quantum-safe networks. This approach eliminates the need for dedicated fibers for QKD, significantly reducing infrastructure costs and facilitating large-scale deployment. As a promising foundation for next-generation high-capacity optical networks, multi-core fiber (MCF) opens new possibilities for such coexistence, offering an elegant and spectrum-efficient solution for the integration of quantum and classical channels. Here, we report the first field trial of QKD securely coexisting with bidirectional 106.7 Tb/s full-C-band dense wavelength-division-multiplexed coherent classical transmission over 25.2 km of installed standard-cladding diameter (125 μm) uncoupled-core four-core fiber in L'Aquila, Italy. Despite a classical launch power of 20 dBm per core, a secure key rate of 1.7 kb/s was achieved, using a commercial QKD system. We used the secure keys to achieve real-time encryption of up to 132 Gb/s live traffic within a 400 Gb/s channel, with key refresh intervals as short as 15 seconds. We used hardware encryption, introducing only 52 μs end-to-end latency and jitter below 4 μs compared to the unencrypted case. These results represent a major milestone toward practical, secure, and scalable integration of quantum and classical communication over deployed metropolitan multi-core fiber infrastructure.

Coexisting QKD and Real-Time Encrypted High-Speed Fiber-Optic Communication in Field-Deployed Multi-Core Fibers / Ramadan, I.M., Sciullo, G.D., Wu, Q.i., Ribezzo, D., Shaji, D.A., Zischler, L.A., Luis, R.S., Serena, P., Lasagni, C., Bononi, A., Hayashi, T., Gagliano, A., Martelli, P., Gatto, A., Parolari, P., Boffi, P., Marotta, A., Centofanti, C., Graziosi, F., Mecozzi, A., et al.. - In: JOURNAL OF LIGHTWAVE TECHNOLOGY. - ISSN 0733-8724. - 44:16(2026), pp. 6894-6903. [10.1109/jlt.2026.3704505]

Coexisting QKD and Real-Time Encrypted High-Speed Fiber-Optic Communication in Field-Deployed Multi-Core Fibers

Serena, Paolo;Lasagni, Chiara;Bononi, Alberto;
2026-01-01

Abstract

Quantum key distribution (QKD) coexisting with ultra-high-capacity classical optical signals over the same fiber is widely regarded as a cornerstone of future quantum-safe networks. This approach eliminates the need for dedicated fibers for QKD, significantly reducing infrastructure costs and facilitating large-scale deployment. As a promising foundation for next-generation high-capacity optical networks, multi-core fiber (MCF) opens new possibilities for such coexistence, offering an elegant and spectrum-efficient solution for the integration of quantum and classical channels. Here, we report the first field trial of QKD securely coexisting with bidirectional 106.7 Tb/s full-C-band dense wavelength-division-multiplexed coherent classical transmission over 25.2 km of installed standard-cladding diameter (125 μm) uncoupled-core four-core fiber in L'Aquila, Italy. Despite a classical launch power of 20 dBm per core, a secure key rate of 1.7 kb/s was achieved, using a commercial QKD system. We used the secure keys to achieve real-time encryption of up to 132 Gb/s live traffic within a 400 Gb/s channel, with key refresh intervals as short as 15 seconds. We used hardware encryption, introducing only 52 μs end-to-end latency and jitter below 4 μs compared to the unencrypted case. These results represent a major milestone toward practical, secure, and scalable integration of quantum and classical communication over deployed metropolitan multi-core fiber infrastructure.
2026
Coexisting QKD and Real-Time Encrypted High-Speed Fiber-Optic Communication in Field-Deployed Multi-Core Fibers / Ramadan, I.M., Sciullo, G.D., Wu, Q.i., Ribezzo, D., Shaji, D.A., Zischler, L.A., Luis, R.S., Serena, P., Lasagni, C., Bononi, A., Hayashi, T., Gagliano, A., Martelli, P., Gatto, A., Parolari, P., Boffi, P., Marotta, A., Centofanti, C., Graziosi, F., Mecozzi, A., et al.. - In: JOURNAL OF LIGHTWAVE TECHNOLOGY. - ISSN 0733-8724. - 44:16(2026), pp. 6894-6903. [10.1109/jlt.2026.3704505]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11381/3072527
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