2023Journal of the Optical Society of America ARequires access

Definition of a second-order degree of polarization in terms of the complex degree of coherence

Cristian Hernandez-Cely, Karol Salazar-Ariza, Rafael Torres

Open publisher page 3 citations

Abstract

The classical theory of random electric fields and polarization formalism has been formulated considering the Stokes parameters' auto-correlations. However, in this work, the need to consider the Stokes parameters' cross-correlations to obtain a complete description of the polarization dynamics of a light source is explained. We propose a general expression for the Stokes parameters' degree of correlation using both auto-correlations and cross-correlations, which we derive from the application of Kent's distribution in the statistical study of Stokes parameter dynamics on Poincaré's sphere. Additionally, from the proposed degree of correlation, we obtain a new expression for the degree of polarization (DOP) in terms of the complex degree of coherence, which is a generalization of the well-known Wolf's DOP. The new DOP is tested using a depolarization experiment in which partially coherent light sources propagate through a liquid crystal variable retarder. The experimental results show that our generalization for the DOP improves the theoretical description of a new depolarization phenomenon that Wolf's DOP cannot describe.

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What this paper is about

The classical theory of random electric fields and polarization formalism has been formulated considering the Stokes parameters' auto-correlations. However, in this work, the need to consider the Stokes parameters' cross-correlations to obtain a complete description of the polarization dynamics of a light source is explained. We propose a general expression for the Stokes parameters' degree of correlation using both auto-correlations and cross-correlations, which we derive from the application of Kent's distribution in the statistical study of Stokes parameter dynamics on Poincaré's sphere. Additionally, from the proposed degree of correlation, we obtain a new expression for the degree of polarization (DOP) in terms of the complex degree of coherence, which is a generalization of the well-known Wolf's DOP. The new DOP is tested using a depolarization experiment in which partially coherent light sources propagate through a liquid crystal variable retarder. The experimental results show that our generalization for the DOP improves the theoretical description of a new depolarization phenomenon that Wolf's DOP cannot describe.

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Available abstract

The classical theory of random electric fields and polarization formalism has been formulated considering the Stokes parameters' auto-correlations. However, in this work, the need to consider the Stokes parameters' cross-correlations to obtain a complete description of the polarization dynamics of a light source is explained. We propose a general expression for the Stokes parameters' degree of correlation using both auto-correlations and cross-correlations, which we derive from the application of Kent's distribution in the statistical study of Stokes parameter dynamics on Poincaré's sphere. Additionally, from the proposed degree of correlation, we obtain a new expression for the degree of polarization (DOP) in terms of the complex degree of coherence, which is a generalization of the well-known Wolf's DOP. The new DOP is tested using a depolarization experiment in which partially coherent light sources propagate through a liquid crystal variable retarder. The experimental results show that our generalization for the DOP improves the theoretical description of a new depolarization phenomenon that Wolf's DOP cannot describe.

Key concepts: Degree of polarization, Degree of coherence, Stokes parameters, Degree (music), Polarization (electrochemistry), Retarder, Physics, Coherence (philosophical gambling strategy)

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