Deploying an inter-European quantum network
arXiv:2203.11359 · doi:10.1002/qute.202200061
Abstract
Around forty years have passed since the first pioneering works have introduced the possibility of using quantum physics to strongly enhance communications safety. Nowadays Quantum Cryptography, and in particular, Quantum Key Distribution (QKD) exited the physics laboratories to become commercial technologies that increasingly trigger the attention of States, military forces, banks, and private corporations. This work takes on the challenge of bringing QKD closer to a consumer technology: optical fibers deployed and used by telecommunication companies of different States have been used to realize a quantum network, the first-ever connecting three different countries. This pushes towards the necessary coexistence of QKD and classical communications on the same infrastructure, which currently represents a main limit of this technology. Our network connects Trieste to Rijeka and Ljubljana via a trusted node in Postojna; a key rate of over 3 kbps has been achieved in the shortest link, and a 7-hour long measurement has demonstrated the system stability and reliability. Finally, the network has been used for a public demonstration of QKD at the G20 Digital Ministers' Meeting in Trieste. The reported experimental results, together with the significant interest that one of the most important events of international politics has attracted, showcase the maturity of the QKD technology bundle, placing it in the spotlight for consumer applications in the near term.
8 pages, 3 figures
References in corpus (9)
- Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum Key Distribution Over 509 km
- Micius quantum experiments in space
- Field and long-term demonstration of a wide area quantum key distribution network
- Field Test of Twin-Field Quantum Key Distribution through Sending-or-Not-Sending over 428 km
- Boosting the secret key rate in a shared quantum and classical fibre communication system
- Security proof of a three-state quantum key distribution protocol without rotational symmetry
- Experimentally optimizing QKD rates via nonlocal dispersion compensation
- Quantum randomness generation via orbital angular momentum modes crosstalk in a ring-core fiber
- Towards fully-fledged quantum and classical communication over deployed fiber with up-conversion module
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- Quantum Key Distribution: Bridging Theoretical Security Proofs, Practical Attacks, and Error Correction for Quantum-Augmented Networks
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