Robust measurement of distorted partially coherent vortex beams

J Junan Zhu (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,) Z Zhiquan Hu (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,) Z Zhuoyi Wang Y Yiyi Hang (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,) H Hao Zhang X Xingyuan Lu Q Qiwen Zhan Y Yangjian Cai C Chengliang Zhao (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,)

Abstract

Vortex beams, characterized by their orbital angular momentum proportional to the topological charge, offer significant potential in optical communication. However, turbulence-induced beam distortion and wandering lead to mode crosstalk and hinder accurate topological charge measurement, resulting in the degradation of transmitted information. While coherence modulation has shown potential in enhancing beam stability under dynamic turbulence, robust measurement of the topological charge remains a significant challenge. To address this, we proposed a robust measurement method that integrates learning-based turbulence compensation with self-reference holography for topological charge measurement of partially coherent vortex beams. Both simulation and experimental results confirm that the proposed compensation neural network effectively corrects distorted beams, thereby enabling stable topological charge measurement over extended periods. Moreover, the proposed framework demonstrates strong generalization capabilities, accurately measuring topological charges for coherence widths beyond those in the training dataset. This work provides a promising solution for non-ideal free-space optical communication systems utilizing vortex beams.

Article Details

Volume / Issue Vol. 127, Issue 13
Published September 30, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

J

Junan Zhu

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,

Z

Zhiquan Hu

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,

Z

Zhuoyi Wang

Y

Yiyi Hang

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,

H

Hao Zhang

X

Xingyuan Lu

Q

Qiwen Zhan

Y

Yangjian Cai

C

Chengliang Zhao

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices & Suzhou Key Laboratory of Intelligent Photoelectric Perception, Soochow University 1 , Suzhou 215006,