Optical Singularity Dynamics and Spin-Orbit Interaction due to a Normal-Incident Optical Beam Reflected at a Plane Dielectric Interface
Anirban Debnath, Nitish Kumar, Upasana Baishya, Nirmal K., Viswanathan

TL;DR
This paper provides an exact analysis of optical singularity dynamics and spin-orbit interaction for a beam reflected at a dielectric interface, revealing new polarization and phase phenomena with potential nano-optical applications.
Contribution
It derives an exact field expression for normal-incidence reflection, enabling detailed exploration of singularity dynamics and spin-orbit interactions in optical beams.
Findings
Significant polarization and phase singularity dynamics observed.
Experimental verification of theoretical predictions conducted.
Insights into spin-orbit interaction and OAM flux in reflected beams.
Abstract
The degenerate case of normal incidence and reflection of an optical beam (both paraxial and non-paraxial) at a plane isotropic dielectric interface, which is azimuthally symmetric in terms of the momentum-spatial variation of Fresnel coefficients but not in terms of the fundamental polarization inhomogeneity of the incident field, requires in-depth analyses. In this paper, we use the reflection and transmission coefficient matrix formalism to derive an exact field expression of a normal-reflected diverging beam. The availability of the exact field information allows controlled variations of the system parameters, leading to significant dynamics of phase and polarization singularities hitherto unanticipated in the literature. We carry out a detailed exploration of these dynamics in our simulated system, and also verify them experimentally by using an appropriate setup. We then use…
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Taxonomy
TopicsOrbital Angular Momentum in Optics · Quantum optics and atomic interactions · Characterization and Applications of Magnetic Nanoparticles
