Minder, M., Albosh, S., Alia, O. et al. (5 more authors) (2023) Phase noise characterisation of a 2-km hollow-core nested antiresonant nodeless fibre for twin-field quantum key distribution. In: Padgett, Miles J., Bongs, Kai, Fedrizzi, Alessandro and Politi, Alberto, (eds.) Quantum Technology:Driving Commercialisation of an Enabling Science III. Quantum Technology: Driving Commercialisation of an Enabling Science III 2022, 07-08 Dec 2022 Proceedings of SPIE - The International Society for Optical Engineering . SPIE , GBR
Abstract
The performance of quantum key distribution (QKD) is heavily dependent on the physical properties of the channel over which it is executed. Propagation losses and perturbations in the encoded photons' degrees of freedom, such as polarisation or phase, limit both the QKD range and key rate. The maintenance of phase coherence over optical fibres has lately received considerable attention as it enables QKD over long distances, e.g., through phase-based protocols like Twin-Field (TF) QKD. While optical single mode fibres (SMFs) are the current standard type of fibre, recent hollow core fibres (HCFs) could become a superior alternative in the future. Whereas the co-existence of quantum and classical signals in HCF has already been demonstrated, the phase noise resilience required for phase-based QKD protocols is yet to be established. This work explores the behaviour of HCF with respect to phase noise for the purpose of TF-QKD-like protocols. To achieve this, two experiments are performed. The first, is a set of concurrent measurements on 2 km of HCF and SMF in a double asymmetric Mach-Zehnder interferometer configuration. The second, uses a TF-QKD interferometer consisting of HCF and SMF channels. These initial results indicate that HCF is suitable for use in TF-QKD and other phase-based QKD protocols.
Metadata
Item Type: | Proceedings Paper |
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Authors/Creators: |
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Editors: |
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Copyright, Publisher and Additional Information: | Funding Information: Funding has been provided through the partnership resource scheme of the EPSRC Quantum Communications Hub grant (EP/T001011/1). This is an author-produced version of the published paper. Uploaded in accordance with the publisher’s self-archiving policy. Further copying may not be permitted; contact the publisher for details |
Dates: |
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Institution: | The University of York |
Academic Units: | The University of York > Faculty of Sciences (York) > Physics (York) |
Funding Information: | Funder Grant number EPSRC EP/T001011/1 EPSRC EP/T001011/1 |
Depositing User: | Pure (York) |
Date Deposited: | 03 May 2023 07:40 |
Last Modified: | 02 Apr 2025 23:34 |
Published Version: | https://doi.org/10.1117/12.2647583 |
Status: | Published |
Publisher: | SPIE |
Series Name: | Proceedings of SPIE - The International Society for Optical Engineering |
Identification Number: | 10.1117/12.2647583 |
Related URLs: | |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:198774 |
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