Phase detection of coherence singularities and determination of the topological charge of a partially coherent vortex beam

Journal Article (2019)
Author(s)

Xingyuan Lu (Soochow University)

Chengliang Zhao (Soochow University)

Y. Shao (TU Delft - ImPhys/Optics)

Yan-jun Zeng (Soochow University)

A. P. Konijnenberg (TU Delft - ImPhys/Optics)

Xinlei Zhu (Soochow University)

Sergei Popov (KTH Royal Institute of Technology)

H. Paul Urbach (TU Delft - ImPhys/Optics)

Yangjian Cai (Soochow University, Shandong Normal University)

Research Group
ImPhys/Optics
Copyright
© 2019 Xingyuan Lu, C.L. Zhao, Y. Shao, Jun Zeng, A.P. Konijnenberg, Xinlei Zhu, Sergei Popov, Paul Urbach, Yangjian Cai
DOI related publication
https://doi.org/10.1063/1.5095713
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 Xingyuan Lu, C.L. Zhao, Y. Shao, Jun Zeng, A.P. Konijnenberg, Xinlei Zhu, Sergei Popov, Paul Urbach, Yangjian Cai
Research Group
ImPhys/Optics
Issue number
20
Volume number
114
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Abstract

In the theory of partial coherence, coherence singularities can occur in the spectral degree of coherence (SDOC): in case the fields at two different points are completely uncorrelated, the phase of the SDOC is undefined. For a partially coherent vortex beam, the detection of coherence singularities is linked to the measurement of topological charge, whose magnitude equals the number of ring dislocations in its far field amplitude. However, the phase distribution of coherence singularities is rarely mentioned in the literature and the amplitude distribution can hardly reflect the sign of topological charge. In this letter, we present a phase-analysis method for measuring the coherence singularities by introducing a movable perturbation at a certain point in an illumination window of a finite size. Using the proposed method, we measure experimentally the coherence singularities of a partially coherent vortex beam in the focal plane. From the results, the magnitude and sign of the topological charge can be determined simultaneously from the phase distribution of the coherence singularities. Our results can find application in information transmission.

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