Visualizing strongly focused 3D light fields in an atomic vapor

Fuente: arXiv
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Main Authors: Svensson, Sphinx, Higgins, Clare R., Pizzey, Danielle, Hughes, Ifan G., Franke-Arnold, Sonja
Format: Preprint
Published: 2025
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author Svensson, Sphinx
Higgins, Clare R.
Pizzey, Danielle
Hughes, Ifan G.
Franke-Arnold, Sonja
author_facet Svensson, Sphinx
Higgins, Clare R.
Pizzey, Danielle
Hughes, Ifan G.
Franke-Arnold, Sonja
contents Structured light, when strongly focused, generates highly confined vectorial electromagnetic field distributions which may feature a polarization component along the optical axis. Manipulating and detecting such 3D light fields is challenging, as conventional optical elements and detectors do not interact with the axial polarization component. Vector light can, however, be mapped onto atomic polarizations, making electric dipole transitions an ideal candidate to sense such 3D light configurations. Working in the hyperfine Paschen-Back regime, where the electric dipole transitions are spectrally resolved, we demonstrate direct evidence of the axial polarization component of strongly focused radial light. We investigate the influence of various input polarization states, including radial, azimuthal, and higher-order optical vortices, on atomic absorption profiles. Our results confirm a clear mapping between the 3D vector light and the atomic transition strength. This work provides new insights into vectorial light-matter interaction, and opens avenues for novel quantum sensing applications.
format Preprint
id arxiv_https___arxiv_org_abs_2506_01680
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Visualizing strongly focused 3D light fields in an atomic vapor
Svensson, Sphinx
Higgins, Clare R.
Pizzey, Danielle
Hughes, Ifan G.
Franke-Arnold, Sonja
Atomic Physics
Structured light, when strongly focused, generates highly confined vectorial electromagnetic field distributions which may feature a polarization component along the optical axis. Manipulating and detecting such 3D light fields is challenging, as conventional optical elements and detectors do not interact with the axial polarization component. Vector light can, however, be mapped onto atomic polarizations, making electric dipole transitions an ideal candidate to sense such 3D light configurations. Working in the hyperfine Paschen-Back regime, where the electric dipole transitions are spectrally resolved, we demonstrate direct evidence of the axial polarization component of strongly focused radial light. We investigate the influence of various input polarization states, including radial, azimuthal, and higher-order optical vortices, on atomic absorption profiles. Our results confirm a clear mapping between the 3D vector light and the atomic transition strength. This work provides new insights into vectorial light-matter interaction, and opens avenues for novel quantum sensing applications.
title Visualizing strongly focused 3D light fields in an atomic vapor
topic Atomic Physics
url https://arxiv.org/abs/2506.01680