Saved in:
Bibliographic Details
Main Authors: Beraza, I., Zahidy, M., Mueller, R., Mathew, N. M., Grüner-Nielsen, L., Rishøj, L. S., Oxenløwe, L. K., Galili, M.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2502.12865
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909500072525824
author Beraza, I.
Zahidy, M.
Mueller, R.
Mathew, N. M.
Grüner-Nielsen, L.
Rishøj, L. S.
Oxenløwe, L. K.
Galili, M.
author_facet Beraza, I.
Zahidy, M.
Mueller, R.
Mathew, N. M.
Grüner-Nielsen, L.
Rishøj, L. S.
Oxenløwe, L. K.
Galili, M.
contents The non-cloning theorem of quantum states provides security, but also limits the Secret Key Rate (SKR) for Quantum Key Distribution (QKD) implementations. Multiplexing is a widely used technique to enhance data rates in classical communication systems and can also increase the SKR in QKD systems. Using linearly polarized (LP) modes is an attractive solution as it is compatible with simple fiber designs. This work demonstrates a fiber-based QKD system employing LP mode multiplexing with a photonic lantern to convert the fundamental mode ($LP_{01}$) in separate fibers into higher-order modes ($LP_{11}$) in a single few-mode fiber. The performance of the system is sensitive to polarization dependence, mode alignment, and environmental crosstalk, which requires precise polarization control to minimize Quantum Bit Error Rate (QBER). We report a SKR of 2.34 Mbps over a 24 km 5dB loss fiber link.
format Preprint
id arxiv_https___arxiv_org_abs_2502_12865
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Communication Multiplexing in LP-modes Enabled by Photonic Lanterns
Beraza, I.
Zahidy, M.
Mueller, R.
Mathew, N. M.
Grüner-Nielsen, L.
Rishøj, L. S.
Oxenløwe, L. K.
Galili, M.
Quantum Physics
The non-cloning theorem of quantum states provides security, but also limits the Secret Key Rate (SKR) for Quantum Key Distribution (QKD) implementations. Multiplexing is a widely used technique to enhance data rates in classical communication systems and can also increase the SKR in QKD systems. Using linearly polarized (LP) modes is an attractive solution as it is compatible with simple fiber designs. This work demonstrates a fiber-based QKD system employing LP mode multiplexing with a photonic lantern to convert the fundamental mode ($LP_{01}$) in separate fibers into higher-order modes ($LP_{11}$) in a single few-mode fiber. The performance of the system is sensitive to polarization dependence, mode alignment, and environmental crosstalk, which requires precise polarization control to minimize Quantum Bit Error Rate (QBER). We report a SKR of 2.34 Mbps over a 24 km 5dB loss fiber link.
title Quantum Communication Multiplexing in LP-modes Enabled by Photonic Lanterns
topic Quantum Physics
url https://arxiv.org/abs/2502.12865