Continuous-variable QKD protocols are usually easier to implement than discrete-variables ones, but their security analyses are less developed. Here, the authors propose and demonstrate in the lab a CVQKD protocol that can generate composable keys secure against collective attacks.A quantum key distribution (QKD) system must fulfill the requirement of universal composability to ensure that any cryptographic application (using the QKD system) is also secure. Furthermore, the theoretical proof responsible for security analysis and key generation should cater to the number N of the distributed quantum states being finite in practice. Continuous-variable (CV) QKD based on coherent states, despite being a suitable candidate for integration in the telecom infrastructure, has so far been unable to demonstrate composability as existing proofs require a rather large N for successful key generation. Here we report a Gaussian-modulated coherent state CVQKD system that is able to overcome these challenges and can generate composable keys secure against collective attacks with N approximate to 2 x 10(8) coherent states. With this advance, possible due to improvements to the security proof and a fast, yet low-noise and highly stable system operation, CVQKD implementations take a significant step towards their discrete-variable counterparts in practicality, performance, and security.

Practical continuous-variable quantum key distribution with composable security / Jain, Nitin; Chin, Hou-Man; Mani, Hossein; Lupo, Cosmo; Nikolic, Dino Solar; Kordts, Arne; Pirandola, Stefano; Pedersen, Thomas Brochmann; Kolb, Matthias; Ömer, Bernhard; Pacher, Christoph; Gehring, Tobias; Andersen, Ulrik L. - In: NATURE COMMUNICATIONS. - ISSN 2041-1723. - 13:1(2022), p. 4740. [10.1038/s41467-022-32161-y]

Practical continuous-variable quantum key distribution with composable security

Lupo, Cosmo;
2022-01-01

Abstract

Continuous-variable QKD protocols are usually easier to implement than discrete-variables ones, but their security analyses are less developed. Here, the authors propose and demonstrate in the lab a CVQKD protocol that can generate composable keys secure against collective attacks.A quantum key distribution (QKD) system must fulfill the requirement of universal composability to ensure that any cryptographic application (using the QKD system) is also secure. Furthermore, the theoretical proof responsible for security analysis and key generation should cater to the number N of the distributed quantum states being finite in practice. Continuous-variable (CV) QKD based on coherent states, despite being a suitable candidate for integration in the telecom infrastructure, has so far been unable to demonstrate composability as existing proofs require a rather large N for successful key generation. Here we report a Gaussian-modulated coherent state CVQKD system that is able to overcome these challenges and can generate composable keys secure against collective attacks with N approximate to 2 x 10(8) coherent states. With this advance, possible due to improvements to the security proof and a fast, yet low-noise and highly stable system operation, CVQKD implementations take a significant step towards their discrete-variable counterparts in practicality, performance, and security.
2022
Practical continuous-variable quantum key distribution with composable security / Jain, Nitin; Chin, Hou-Man; Mani, Hossein; Lupo, Cosmo; Nikolic, Dino Solar; Kordts, Arne; Pirandola, Stefano; Pedersen, Thomas Brochmann; Kolb, Matthias; Ömer, Bernhard; Pacher, Christoph; Gehring, Tobias; Andersen, Ulrik L. - In: NATURE COMMUNICATIONS. - ISSN 2041-1723. - 13:1(2022), p. 4740. [10.1038/s41467-022-32161-y]
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11589/248870
Citazioni
  • Scopus 42
  • ???jsp.display-item.citation.isi??? 35
social impact