DV-QKD Coexistence With 1.6 Tbps Classical Channels Over Hollow Core Fibre
Obada Alia, Rodrigo S Tessinari, Sima Bahrani, Thomas D Bradley,, Hesham Sakr, Kerrianne Harrington, John Hayes, Yong Chen, Periklis, Petropoulos, David Richardson, Francesco Poletti, George T Kanellos, Reja, Nejabati, Dimitra Simeonidou

TL;DR
This study demonstrates the successful coexistence of high-capacity classical and quantum channels over hollow core fibre, achieving 1.6 Tbps classical data alongside quantum key distribution with minimal interference.
Contribution
First experimental validation of quantum and classical channel coexistence over HC-NANF, showing significant performance advantages over single-mode fibre in terms of SKR and QBER.
Findings
Coexistence of 1.6 Tbps classical and quantum channels over 2 km HC-NANF achieved.
HC-NANF maintains quantum SKR with high classical power, outperforming SMF.
Optimal wavelength spacing reduces crosstalk, preserving quantum performance.
Abstract
The feasibility of coexisting a quantum channel with carrier-grade classical optical channels over Hollow Core Nested Antiresonant Nodeless Fibre (HC-NANF) is experimentally explored for the first time in terms of achievable quantum bit error rate (QBER), secret key rate (SKR) as well as classical signal bit error rates (BER). A coexistence transmission of 1.6 Tbps is achieved for the classical channels simultaneously with a quantum channel over a 2 km-long HC-NANF with a total coexistence power of 0 dBm. To find the best and worst wavelength position for the classical channels, we simulated different classical channels bands with different spacing between the quantum and classical channels considering the crosstalk generated from both Raman scattering and four-wave-mixing (FWM) on the quantum channel. Following our simulation, we numerically estimate the best (Raman spectrum dip) and…
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