2007/06/01 by Hiroki Takesue, Sae Woo Nam, Qiang Zhang +5 · 13 citations
Computer Science · Physics and Astronomy · #Quantum Information and Cryptography #Quantum Mechanics and Applications #Quantum optics and atomic interactions #quant-ph
paper · pdf · doi:10.1038/nphoton.2007.75
published as Nature Photonics 1, 343 (2007) (revised version) · 15 pages, 5 figures. Original version
crossref issued 2007/06/01 · crossref published 2007/06/01 · crossref published-online 2007/06/01 · crossref published-print 2007/06/01 · openalex publication_date 2007/06/01 · crossref created 2007/06/01 · arxiv created 2007/06/04 · arxiv updated 2015/05/12 · crossref deposited 2023/05/18 · openalex created_date 2025/10/10 · crossref indexed 2026/07/02 · openalex updated_date 2026/07/28
Quantum key distribution (QKD) offers an unconditionally secure means of communication based on the laws of quantum mechanics. Currently, a major challenge is to achieve a QKD system with a 40 dB channel loss, which is required if we are to realize global scale QKD networks using communication satellites. Here we report the first QKD experiment in which secure keys were distributed over 42 dB channel loss and 200 km of optical fibre. We employed the differential phase shift quantum key distribution (DPS-QKD) protocol implemented with a 10-GHz clock frequency, and superconducting single photon detectors (SSPD) based on NbN nanowire. The SSPD offers a very low dark count rate (a few Hz) and small timing jitter (60 ps full width at half maximum). These characteristics allowed us to construct a 10-GHz clock QKD system and thus distribute secure keys over channel loss of 42 dB. In addition, we achieved a 17 kbit/s secure key rate over 105 km of optical fibre, which is two orders of magnitude higher than the previous record, and a 12.1 bit/s secure key rate over 200 km of optical fibre, which is the longest terrestrial QKD yet demonstrated. The keys generated in our experiment are secure against both general collective attacks on individual photons and a specific collective attack on multi-photons, known as a sequential unambiguous state discrimination (USD) attack.