Magnetic and Electric Transverse Spin Density of Spatially Confined Light

When a beam of light is laterally confined, its field distribution can exhibit points where the local magnetic and electric field vectors spin in a plane containing the propagation direction of the electromagnetic wave. The phenomenon indicates the presence of a nonzero transverse spin density. Here...

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Main Authors: Martin Neugebauer, Jörg S. Eismann, Thomas Bauer, Peter Banzer
Format: Article
Language:English
Published: American Physical Society 2018-05-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.8.021042
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spelling doaj-d573afa9fe63429a9e72704bad5c14e72020-11-24T23:04:37ZengAmerican Physical SocietyPhysical Review X2160-33082018-05-018202104210.1103/PhysRevX.8.021042Magnetic and Electric Transverse Spin Density of Spatially Confined LightMartin NeugebauerJörg S. EismannThomas BauerPeter BanzerWhen a beam of light is laterally confined, its field distribution can exhibit points where the local magnetic and electric field vectors spin in a plane containing the propagation direction of the electromagnetic wave. The phenomenon indicates the presence of a nonzero transverse spin density. Here, we experimentally investigate this transverse spin density of both magnetic and electric fields, occurring in highly confined structured fields of light. Our scheme relies on the utilization of a high-refractive-index nanoparticle as a local field probe, exhibiting magnetic and electric dipole resonances in the visible spectral range. Because of the directional emission of dipole moments that spin around an axis parallel to a nearby dielectric interface, such a probe particle is capable of locally sensing the magnetic and electric transverse spin density of a tightly focused beam impinging under normal incidence with respect to said interface. We exploit the achieved experimental results to emphasize the difference between magnetic and electric transverse spin densities.http://doi.org/10.1103/PhysRevX.8.021042
collection DOAJ
language English
format Article
sources DOAJ
author Martin Neugebauer
Jörg S. Eismann
Thomas Bauer
Peter Banzer
spellingShingle Martin Neugebauer
Jörg S. Eismann
Thomas Bauer
Peter Banzer
Magnetic and Electric Transverse Spin Density of Spatially Confined Light
Physical Review X
author_facet Martin Neugebauer
Jörg S. Eismann
Thomas Bauer
Peter Banzer
author_sort Martin Neugebauer
title Magnetic and Electric Transverse Spin Density of Spatially Confined Light
title_short Magnetic and Electric Transverse Spin Density of Spatially Confined Light
title_full Magnetic and Electric Transverse Spin Density of Spatially Confined Light
title_fullStr Magnetic and Electric Transverse Spin Density of Spatially Confined Light
title_full_unstemmed Magnetic and Electric Transverse Spin Density of Spatially Confined Light
title_sort magnetic and electric transverse spin density of spatially confined light
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2018-05-01
description When a beam of light is laterally confined, its field distribution can exhibit points where the local magnetic and electric field vectors spin in a plane containing the propagation direction of the electromagnetic wave. The phenomenon indicates the presence of a nonzero transverse spin density. Here, we experimentally investigate this transverse spin density of both magnetic and electric fields, occurring in highly confined structured fields of light. Our scheme relies on the utilization of a high-refractive-index nanoparticle as a local field probe, exhibiting magnetic and electric dipole resonances in the visible spectral range. Because of the directional emission of dipole moments that spin around an axis parallel to a nearby dielectric interface, such a probe particle is capable of locally sensing the magnetic and electric transverse spin density of a tightly focused beam impinging under normal incidence with respect to said interface. We exploit the achieved experimental results to emphasize the difference between magnetic and electric transverse spin densities.
url http://doi.org/10.1103/PhysRevX.8.021042
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AT thomasbauer magneticandelectrictransversespindensityofspatiallyconfinedlight
AT peterbanzer magneticandelectrictransversespindensityofspatiallyconfinedlight
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