Journal article · Preprint article
High-dimensional measurement-device-independent quantum key distribution on two-dimensional subspaces
University of Copenhagen1
Department of Photonics Engineering, Technical University of Denmark2
Ultra-fast Optical Communication, Department of Photonics Engineering, Technical University of Denmark3
Centre of Excellence for Silicon Photonics for Optical Communications, Centers, Technical University of Denmark4
Quantum key distribution (QKD) provides ultimate cryptographic security based on the laws of quantum mechanics. For point-to-point QKD protocols, the security of the generated key is compromised by detector side channel attacks. This problem can be solved with measurement-device-independent QKD (mdi-QKD).
However, mdi-QKD has shown limited performances in terms of the secret key generation rate, due to postselection in the Bell measurements. We show that high-dimensional (Hi-D) encoding (qudits) improves the performance of current mdi-QKD implementations. The scheme is proven to be unconditionally secure even for weak coherent pulses with decoy states, while the secret key rate is derived in the single-photon case.
Our analysis includes phase errors, imperfect sources, and dark counts to mimic real systems. Compared to the standard bidimensional case, we show an improvement in the key generation rate.
Language: | English |
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Year: | 2018 |
Pages: | 6 |
ISSN: | 10941622 , 10502947 , 24699926 and 24699934 |
Types: | Journal article and Preprint article |
DOI: | 10.1103/PhysRevA.98.062301 |
ORCIDs: | Bacco, Davide , 0000-0003-1914-6539 and 0000-0003-1337-9163 |