A high-dimensional quantum key distribution (QKD) can improve error rate tolerance and the secret key rate. Many d-dimensional QKDs have used two mutually unbiased bases (MUBs), while (d+1) MUBs enable a more robust QKD, especially against correlated errors. However, a scalable implementation has not been achieved because the setups have required d devices even for two MUBs or a flexible convertor for a specific optical mode. Here, we propose a scalable and general implementation of (d+1) MUBs using logpd interferometers in prime power dimensions d=pN. We implemented the setup for time-bin states and observed an average error rate of 3.8% for phase bases, which is lower than the 23.17% required for a secure QKD against coherent attack in d=4.
@article{arxiv.2204.02691,
title = {Scalable implementation of $(d+1)$ mutually unbiased bases for $d$-dimensional quantum key distribution},
author = {Takuya Ikuta and Seiseki Akibue and Yuya Yonezu and Toshimori Honjo and Hiroki Takesue and Kyo Inoue},
journal= {arXiv preprint arXiv:2204.02691},
year = {2022}
}
Comments
7 pages, 3 figures, followed by Supplemental Material of 11 pages, 2 figure, 2 table