4.5 Article

Independently Controlling Stochastic Field Realization Magnitude and Phase Statistics for the Construction of Novel Partially Coherent Sources

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PHOTONICS
卷 8, 期 2, 页码 -

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MDPI
DOI: 10.3390/photonics8020060

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coherence; random sources; scintillation; speckle; statistical optics

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This paper presents a method for independently controlling the field and irradiance statistics of a partially coherent beam. By including control over irradiance statistics in addition to the cross-spectral density function, this method expands existing synthesis approaches and enables the design, modeling, and simulation of new partially coherent beams. The expressions derived in the paper relate the ensemble moments of the fields to those of the desired partially coherent beam, allowing for the generation of random optical field realizations with proper statistics and validation of the technique through comparison with theoretical results.
In this paper, we present a method to independently control the field and irradiance statistics of a partially coherent beam. Prior techniques focus on generating optical field realizations whose ensemble-averaged autocorrelation matches a specified second-order field moment known as the cross-spectral density (CSD) function. Since optical field realizations are assumed to obey Gaussian statistics, these methods do not consider the irradiance moments, as they, by the Gaussian moment theorem, are completely determined by the field's first and second moments. Our work, by including control over the irradiance statistics (in addition to the CSD function), expands existing synthesis approaches and allows for the design, modeling, and simulation of new partially coherent beams, whose underlying field realizations are not Gaussian distributed. We start with our model for a random optical field realization and then derive expressions relating the ensemble moments of our fields to those of the desired partially coherent beam. We describe in detail how to generate random optical field realizations with the proper statistics. We lastly generate two example partially coherent beams using our method and compare the simulated field and irradiance moments theory to validate our technique.

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