Linking QKD Testbeds across Europe

Author:

Brauer Max1,Vicente Rafael J.2ORCID,Buruaga Jaime S.2ORCID,Méndez Rubén B.2,Braun Ralf-Peter1ORCID,Geitz Marc1,Rydlichkowski Piotr3ORCID,Brunner Hans H.4,Fung Fred4,Peev Momtchil4ORCID,Pastor Antonio5,Lopez Diego R.5ORCID,Martin Vicente2,Brito Juan P.2

Affiliation:

1. T-Labs, Deutsche Telekom AG, 10781 Berlin, Germany

2. DLSIIS and Center for Computational Simulation, Universidad Politécnica de Madrid, 28660 Madrid, Spain

3. Poznan Supercomputing and Networking Center, 61-139 Poznań, Poland

4. Munich Research Center, Huawei Technologies Duesseldorf GmbH, 80992 Munich, Germany

5. Telefónica gCTIO/I+D, 28050 Madrid, Spain

Abstract

Quantum-key-distribution (QKD) networks are gaining importance and it has become necessary to analyze the most appropriate methods for their long-distance interconnection. In this paper, four different methods of interconnecting remote QKD networks are proposed. The methods are used to link three different QKD testbeds in Europe, located in Berlin, Madrid, and Poznan. Although long-distance QKD links are only emulated, the methods used can serve as a blueprint for the secure interconnection of distant QKD networks in the future. Specifically, the presented approaches combine, in a transparent way, different fiber and satellite physical media, as well as common standards of key delivery interfaces. The testbed interconnections are designed to increase the security by utilizing multipath techniques and multiple hybridizations of QKD and post-quantum cryptography (PQC) algorithms.

Funder

Comunidad de Madrid

European Union

European Union under the Horizon Europe framework program

QuantERA II Programme, European Union’s Horizon 2020 research and innovation program

The Foundation for Science and Technology—FCT

Agence Nationale de la Recherche—ANR

Spanish Agencia Estatal de Investigación—AEI

European Union’s Horizon Europe research and innovation funding program

Publisher

MDPI AG

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3. NIST, Information Technology Laboratory, C.S.R.C. (2023, November 08). Post Quantum Cryptography, Draft FIPS 203, FIPS 204 and FIPS 205, Which Specify Algorithms Derived from CRYSTALS-Dilithium, CRYSTALS-KYBER and SPHINCS+, Available online: https://csrc.nist.gov/projects/post-quantum-cryptography.

4. Braun, R.P., and Geitz, M. (2021, January 24–27). The OpenQKD Testbed in Berlin. Proceedings of the 2021 Asia Communications and Photonics Conference (ACP), Shanghai, China.

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