4.8 Article

Entanglement distribution over a 96-km-long submarine optical fiber

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1818752116

关键词

quantum entanglement; quantum key distribution; quantum cryptography; polarization-entangled photons

资金

  1. University of Malta Research, Innovation & Development Trust
  2. European Research Council [307687]
  3. Swedish Research Council [638-2013-7152]
  4. Linnaeus Center in Advanced Optics and Photonics
  5. Austrian Research Promotion Agency (FFG) Agentur fur Luft- und Raumfahrt (FFG-ALR) [844360]
  6. Austrian Science and Applications Programme (FFG/ASAP) [6238191/854022]
  7. European Space Agency [4000112591/14/NL/US]
  8. Austrian Science Fund [P24621-N27]
  9. Austrian Science Fund START Project [Y879-N27]
  10. Austrian Academy of Sciences
  11. European Research Council (ERC) [307687] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

Quantum entanglement is one of the most extraordinary effects in quantum physics, with many applications in the emerging field of quantum information science. In particular, it provides the foundation for quantum key distribution (QKD), which promises a conceptual leap in information security. Entanglement-based QKD holds great promise for future applications owing to the possibility of device-independent security and the potential of establishing global-scale quantum repeater networks. While other approaches to QKD have already reached the level of maturity required for operation in absence of typical laboratory infrastructure, comparable field demonstrations of entanglement-based QKD have not been performed so far. Here, we report on the successful distribution of polarization-entangled photon pairs between Malta and Sicily over 96 km of submarine optical telecommunications fiber. We observe around 257 photon pairs per second, with a polarization visibility above 90%. Our results show that QKD based on polarization entanglement is now indeed viable in long-distance fiber links. This field demonstration marks the longest-distance distribution of entanglement in a deployed telecommunications network and demonstrates an international submarine quantum communication channel. This opens up myriad possibilities for future experiments and technological applications using existing infrastructure.

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