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August 15, 2025Light Science & Applications25 citationsOpen Access

Integration of quantum key distribution and high-throughput classical communications in field-deployed multi-core fibers

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QWQi WuDRDomenico RibezzoGSGiammarco Di Sciullo

Key Points

  • The study demonstrates successful secure-key establishment through quantum key distribution alongside classical communication.
  • Key metrics include a secure key establishment in one core of a 25.2-km multi-core fiber with an aggregate rate of 110.8 Tb/s.
  • Experimental validation examines the influence of inter-core spontaneous Raman scattering noise in the proposed configuration.
  • These findings may enable enhanced security in next-generation optical communication networks with multi-core fiber technology.

Abstract

Quantum key distribution (QKD) is a secure communication method for sharing symmetric cryptographic keys based on the principles of quantum physics. Its integration into the fiber-optic network infrastructure is important for ensuring privacy in optical communications. Multi-core fibers (MCFs), the likely building blocks of future high-capacity optical networks, offer new opportunities for such integration. Here, we experimentally demonstrate, for the first time, the coexistence of discrete-variable QKD and high-throughput classical communication in the C-band over a field-deployed MCF with industry standard cladding diameter of 125 μm. Specifically, we demonstrate successful secure-key establishment in one core of a 25.2-km uncoupled-core MCF, while simultaneously loading the remaining three cores with full C-band counter-propagating classical traffic at an aggregate net rate of 110.8 Tb/s. By proposing and experimentally validating an improved analytical model for inter-core spontaneous Raman scattering noise, we find that this configuration is optimal for our deployed MCF link as it is immune to four-wave mixing, that becomes relevant when the quantum and classical signals are propagating in the same direction. Our findings make an important step forward in demonstrating the integration of QKD and classical transmission in uncoupled-core multi-core fibers for next-generation optical communication networks.

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Cite This Study

Wu et al. (2025) studied this question.

synapsesocial.com/papers/68a365600a429f797332b3c9https://doi.org/10.1038/s41377-025-01982-z
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Enhanced Coexistence of Quantum Key Distribution and Classical Communication over Hollow-Core and Multi-Core Fibers2024 · 3 citations
  2. 2Coexistence of 11 Tbps (110×100 Gbps) classical optical communication and quantum key distribution based on single-mode fiber2024 · 4 citations
  3. 3First Demonstration of 25{\lambda} x 10 Gb/s C+L Band Classical / DV-QKD Co-Existence Over Single Bidirectional Fiber Link2024
  4. 4Practical high-dimensional quantum key distribution protocol over deployed multicore fiber2024 · 28 citations
  5. 5Time-Interleaved C-Band Co-Propagation of Quantum and Classical Channels2024 · 5 citations