Induced-photorefraction attack against quantum key distribution

P Ye, W Chen, GW Zhang, FY Lu, FX Wang… - Physical Review …, 2023 - APS
Lithium niobate (Li Nb O 3, LN) devices play critical roles in quantum information
processing. However, for special applications like quantum key distribution (QKD), the …

Effect of light injection on the security of practical quantum key distribution

L Han, Y Li, H Tan, W Zhang, W Cai, J Yin, J Ren… - Physical Review …, 2023 - APS
Quantum key distribution (QKD) based on the fundamental laws of quantum physics can
allow the distribution of secure keys between distant users. However, imperfections in …

1.5-µm single photon counting using polarization-independent up-conversion detector

H Takesue, E Diamanti, C Langrock, MM Fejer… - Optics express, 2006 - opg.optica.org
We report a 1.5-μm band polarization independent single photon detector based on
frequency up-conversion in periodically poled lithium niobate (PPLN) waveguides. To …

Laser damage helps the eavesdropper in quantum cryptography

AN Bugge, S Sauge, AMM Ghazali, J Skaar… - Physical review …, 2014 - APS
We propose a class of attacks on quantum key distribution (QKD) systems where an
eavesdropper actively engineers new loopholes by using damaging laser illumination to …

A quantum relay chip based on telecommunication integrated optics technology

A Martin, O Alibart, MP De Micheli… - New Journal of …, 2012 - iopscience.iop.org
We investigate an integrated optical circuit on lithium niobate designed to implement a
teleportation-based quantum relay scheme for one-way quantum communication at a …

Experimental investigation of quantum key distribution through transparent optical switch elements

P Toliver, RJ Runser, TE Chapuran… - IEEE Photonics …, 2003 - ieeexplore.ieee.org
Quantum key distribution (QKD) enables unconditional physical layer security for the
distribution of cryptographic key material. However, most experimental demonstrations have …

[HTML][HTML] Quantum frequency conversion and single-photon detection with lithium niobate nanophotonic chips

X Wang, X Jiao, B Wang, Y Liu, XP Xie… - npj Quantum …, 2023 - nature.com
The lithium niobate on insulator (LNOI) platform has revolutionized lithium niobate materials,
and a series of quantum photonic chips have exhibited unprecedented performances …

Cost-effective ML-powered polarization-encoded quantum key distribution

M Ahmadian, M Ruiz, J Comellas… - Journal of Lightwave …, 2022 - ieeexplore.ieee.org
Secure communications have become a requirement for virtually all kind of applications.
Currently, two distant parties can generate shared random secret keys by using public key …

All-fiber self-compensating polarization encoder for quantum key distribution

C Agnesi, M Avesani, A Stanco, P Villoresi, G Vallone - Optics letters, 2019 - opg.optica.org
Quantum key distribution (QKD) allows distant parties to exchange cryptographic keys with
unconditional security by encoding information on the degrees of freedom of photons …

[HTML][HTML] Single-photon detection and cryogenic reconfigurability in lithium niobate nanophotonic circuits

E Lomonte, MA Wolff, F Beutel, S Ferrari… - Nature …, 2021 - nature.com
Abstract Lithium-Niobate-On-Insulator (LNOI) is emerging as a promising platform for
integrated quantum photonic technologies because of its high second-order nonlinearity …