Guarding Quantum Key Distribution with integrated Magnetic-free Nonreciprocal Structures
Abstract
Inserting nonreciprocal devices at the doorways of Alice and Bob is a widely recognized countermeasure against quantum hacking attacks in quantum key distribution (QKD) systems. However, traditional integrated nonreciprocal devices, which are typically based on magneto-optical effects, face challenges in compatibility with current semiconductor integration technology. As a result, earlier chip-based QKD systems were unable to integrate nonreciprocal components and were vulnerable to injecting-type attacks. Based on the actual parameters of SOI integration, we employed the inverse design with the direct binary search algorithm to construct several magnetic-free nonreciprocal devices, facilitating their integration into chip-based QKD systems while meeting various chip configuration design requirements. The designed devices have sizes of only a few square micrometers, yet the quasi-isolator can achieve an isolation level exceeding 27 dB. To demonstrate their practical utility in QKD, we employed the designed devices to safeguard the QKD system against Trojan-horse attacks. The simulation results demonstrate that our proposed devices effectively secure the BB84 and measure-device-independent QKD systems against Trojan-horse attacks.
Keywords
Cite
@article{arxiv.2306.06564,
title = {Guarding Quantum Key Distribution with integrated Magnetic-free Nonreciprocal Structures},
author = {Qiang Liu and Yinming Huang and Tingting Luo and Chunfeng Huang and Minming Geng and Zhenrong Zhang and Kejin Wei},
journal= {arXiv preprint arXiv:2306.06564},
year = {2023}
}
Comments
We have found that the presented structure is a mode convertor which is suitable for guarding quantum key ditribution