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Scattering of Poincare beams: polarization speckles

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arxiv 1705.04478 v1 pith:56U2YP5P submitted 2017-05-12 physics.optics

Scattering of Poincare beams: polarization speckles

classification physics.optics
keywords polarizationbeamssizespecklespecklesprofilestokesvector
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Polarization speckle is a fine granular light pattern having spatially varying random polarization profile. We generate these speckle patterns by using the scattering of Poincar\'e beams, a special class of vector vortex beams, through a ground glass plate. Here, the Poincar\'e beams are generated using a polarization sensitive spatial light modulator displaying an on-axis hologram corresponding to an optical vortex phase profile. The different inhomogeneities of the rough surface experience different polarizations, which control the ability for scattered waves to interfere at the detection plane and causes a spatially varying polarization profile. We experimentally determined the spatial variation of local degree of polarization and orientation of the polarization ellipse for these speckle patterns from the Stokes analysis. We also determined the size of scalar speckles using the auto-correlation function of Stokes parameter S0 and the size of polarization speckles using the sum of auto-correlation functions of remaining three Stokes parameters. We found that the scalar speckle size is independent of index of the vector beam but the size of polarization speckles decreases with the increase in index of the vector beam.

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