Quantum entanglement distribution coexisting with high-rate, broadband classical optical communications over a real-world fiber connecting remote, synchronized nodes
arXiv:2602.00253 · doi:10.1364/OPTICAQ.592786
Abstract
Compatibility with existing classical network infrastructure offers a scalable path towards deploying large-scale quantum networks. Here, we demonstrate O-band polarization-encoded quantum entanglement distribution over an installed 24.4-km fiber while coexisting with a state-of-the-art fully-loaded C-band classical communications line system and a picosecond-level precision L-band synchronization signal. The classical system carries two 800-Gbps channels while the remainder of the C-band is filled with amplified spontaneous emission, as is standard for such state-of-the-art communications systems. We examine the spontaneous Raman scattering spectrum generated from this broadband C-band light and offer insights into wavelength allocation for O-band quantum channels. Optimal wavelength selection and narrow filtering enable well-preserved Bell state fidelity when coexisting with 21.4-dBm aggregate launch power across the C-band suitable for 36-Tbps transmission. To the best of our knowledge, this is the first implementation of entanglement-based quantum communications between two remote nodes coexisting with independent classical communications traffic. We demonstrate coexistence of quantum entanglement with ultra-high power levels and record classical bandwidth, offering promise for real-world entanglement-based networking integrated within high-capacity communications infrastructure.
11 pages, 7 figures
References in corpus (30)
- The Quantum Internet
- Quantum key distribution and 1 Gbit/s data encryption over a single fibre
- A trusted-node-free eight-user metropolitan quantum communication network
- Quantum teleportation across a metropolitan fibre network
- Coexistence of high-bit-rate quantum key distribution and data on optical fiber
- Integrating quantum key distribution with classical communications in backbone fiber network
- Coexistence of continuous variable QKD with intense DWDM classical channels
- Feasibility of quantum key distribution through dense wavelength division multiplexing network
- Long distance co-propagation of quantum key distribution and terabit classical optical data channels
- Ultra-high bandwidth quantum secured data transmission
- Effects of multiple pairs on visibility measurements of entangled photons generated by spontaneous parametric processes
- Continuous entanglement distribution over a transnational 248 km fibre link
- Ultra fast quantum key distribution over a 97 km installed telecom fiber with wavelength-division multiplexing clock synchronization
- A Reconfigurable Quantum Local Area Network Over Deployed Fiber
- Demonstration of 17λ x 10 Gb/s C-Band Classical / DV-QKD Co-Existence Over Hollow-Core Fiber Link
- Deployed MDI-QKD and Bell-State Measurements Coexisting with Standard Internet Data and Networking Equipment
- Quantum teleportation coexisting with classical communications in optical fiber
- Designing Noise-Robust Quantum Networks Coexisting in the Classical Fiber Infrastructure
- Metropolitan-scale Entanglement Distribution with Co-existing Quantum and Classical Signals in a single fiber
- Narrowband polarization-entangled photon pairs distributed over a WDM link for qubit networks
- Co-propagation of QKD & 6 Tb/s (60x100G) DWDM channels with ~17 dBm total WDM power in single and multi-span configurations
- The limits of multiplexing quantum and classical channels: Case study of a 2.5 GHz discrete variable quantum key distribution system
- Picosecond Synchronization of Photon Pairs through a Fiber Link between Fermilab and Argonne National Laboratories
- Coexistence of continuous-variable quantum key distribution and classical data over 120-km fiber
- Coexistence of multiuser entanglement distribution and classical light in optical fiber network with a semiconductor chip
- Hong-Ou-Mandel Interference with a Coexisting Clock using Transceivers for Synchronization over Deployed Fiber
- Quantum entanglement distribution with 810 nm photons through active telecommunication fibers
- Entanglement distribution over 155 km metropolitan fiber using a CMOS-compatible silicon chip
- Experimental Demonstration of Software-Orchestrated Quantum Network Applications over a Campus-Scale Testbed
- Optimal filtering and generation of entangled photons for quantum applications in the presence of noise