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DC Field | Value | Language |
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dc.contributor.author | Park, Chang Hoon | - |
dc.contributor.author | Woo, Min Ki | - |
dc.contributor.author | Park, Byung Kwon | - |
dc.contributor.author | Kim, Yong Su | - |
dc.contributor.author | Baek, Hyeonjun | - |
dc.contributor.author | Lee, Seung Woo | - |
dc.contributor.author | Lim, Hyang Tag | - |
dc.contributor.author | Jeon, Seung Woo | - |
dc.contributor.author | Jung, Hojoong | - |
dc.contributor.author | Kim, Sangin | - |
dc.contributor.author | Han, Sang Wook | - |
dc.date.issued | 2022-12-01 | - |
dc.identifier.issn | 2056-6387 | - |
dc.identifier.uri | https://dspace.ajou.ac.kr/dev/handle/2018.oak/32673 | - |
dc.description.abstract | Developing quantum key distribution (QKD) has been recently directed toward distance extension and network expansion for real-world secure communications. Considering a recent report on a quantum communication network over 4,600 km, it seems that QKD networks using conventional protocols have been sufficiently studied. However, although the twin-field QKD (TF-QKD) proposed for long-distance QKD has been studied deeply enough to succeed the demonstrations over 428- and 511-km deployed fibers, TF-QKD networks have been verified only for a ring network. In this work, we propose a star topological 2 × N TF-QKD network scheme, where the coherence maintenance issue, being the primary obstacle to implementing TF-QKD, can be minimized by the automatic mode-matching feature of the Sagnac-based plug-and-play architecture. A lower number of active controllers is required for our scheme in comparison with one-way TF-QKD networks. Moreover, our scheme adopts a cost-effective configuration that requires only a single pair of single-photon detectors for the entire network system. We conducted a proof-of-concept experiment over a 50-km fiber successfully, achieving an average secret key rate of 1.31 × 10−4bit per pulse (1.52 bit per second) with the finite-size effect. | - |
dc.description.sponsorship | National Research Foundation of Korea (2019M3E4A1079777, 2019R1A2C2006381, 2019M3E4A107866011, 2021M1A2A2043892), MSIT/IITP (2020-0-00972 and 2020-0-00947), and the KIST research program (2E31021). | - |
dc.language.iso | eng | - |
dc.publisher | Nature Research | - |
dc.subject.mesh | A-RINGS | - |
dc.subject.mesh | Automatic mode | - |
dc.subject.mesh | Communications networks | - |
dc.subject.mesh | Deployed fiber | - |
dc.subject.mesh | Distribution network configuration | - |
dc.subject.mesh | Network expansion | - |
dc.subject.mesh | Network scheme | - |
dc.subject.mesh | Real-world | - |
dc.subject.mesh | Ring networks | - |
dc.subject.mesh | Time-division multiplexing | - |
dc.title | 2×N twin-field quantum key distribution network configuration based on polarization, wavelength, and time division multiplexing | - |
dc.type | Article | - |
dc.citation.title | npj Quantum Information | - |
dc.citation.volume | 8 | - |
dc.identifier.bibliographicCitation | npj Quantum Information, Vol.8 | - |
dc.identifier.doi | 10.1038/s41534-022-00558-8 | - |
dc.identifier.scopusid | 2-s2.0-85129327638 | - |
dc.identifier.url | https://www.nature.com/npjqi/ | - |
dc.description.isoa | true | - |
dc.subject.subarea | Computer Science (miscellaneous) | - |
dc.subject.subarea | Statistical and Nonlinear Physics | - |
dc.subject.subarea | Computer Networks and Communications | - |
dc.subject.subarea | Computational Theory and Mathematics | - |
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