Probing the rotational spin-Hall effect in higher order Gaussian beams
Ram Nandan Kumar, Yatish, Subhasish Dutta Gupta, Nirmalya Ghosh, and, Ayan Banerjee

TL;DR
This paper investigates the spin-orbit interaction effects in higher order Gaussian beams, revealing a rotational Hall effect through theoretical, numerical, and experimental analysis, with potential applications in optical trapping.
Contribution
It demonstrates the rotational Hall effect in higher order Gaussian beams and experimentally validates the significant azimuthal rotation caused by spin-orbit interaction.
Findings
Significant azimuthal rotation of intensity profiles due to SOI.
Experimental validation of theoretical predictions.
Rotation increases with refractive index contrast.
Abstract
Spin-to-orbit conversion of light is a dynamical optical phenomenon in non-paraxial fields leading to various manifestations of the spin and orbital Hall effect. However, effects of spin-orbit interaction (SOI) have not been explored extensively for higher order Gaussian beams carrying no intrinsic orbital angular momentum. Indeed, the SOI effects on such structured beams can be directly visualized due to azimuthal rotation of their transverse intensity profiles - a phenomenon we call the rotational Hall effect. In this paper, we show that for an input circularly polarized (right/left) mode, SOI leads to a significant azimuthal rotation of the transverse intensity distribution of both the orthogonal circularly polarized (left/right) component, and the transverse component of the longitudinal field intensity with respect to the input intensity profile. We validate our…
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Taxonomy
TopicsOrbital Angular Momentum in Optics · Cold Atom Physics and Bose-Einstein Condensates · Quantum optics and atomic interactions
