Topological optical skyrmion transfer to matter

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Mitra, Chirantan, Madasu, Chetan Sriram, Gabardos, Lucas, Kwong, Chang Chi, Shen, Yijie, Ruostekoski, Janne, Wilkowski, David
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916716416598016
author Mitra, Chirantan
Madasu, Chetan Sriram
Gabardos, Lucas
Kwong, Chang Chi
Shen, Yijie
Ruostekoski, Janne
Wilkowski, David
author_facet Mitra, Chirantan
Madasu, Chetan Sriram
Gabardos, Lucas
Kwong, Chang Chi
Shen, Yijie
Ruostekoski, Janne
Wilkowski, David
contents The ability of structured light to mimic exotic topological skyrmion textures, encountered in high-energy physics, cosmology, magnetic materials, and superfluids has recently received considerable attention. Despite their promise as mechanisms for data encoding and storage, there has been a lack of studies addressing the transfer and storage of the topology of optical skyrmions to matter. Here, we demonstrate a high-fidelity mapping of skyrmion topology from a laser beam onto a gas of cold atoms, where it is detected in its new non-propagating form. Within the spatial overlap of the beam and atom cloud, the skyrmion topological charge is preserved, with a reduction from $Q \simeq 0.91$ to $Q \simeq 0.84$ mainly due to the beam width exceeding the sample size. Our work potentially opens novel avenues for topological photonics state storage and the analysis of more complex structured light topologies.
format Preprint
id arxiv_https___arxiv_org_abs_2503_22534
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Topological optical skyrmion transfer to matter
Mitra, Chirantan
Madasu, Chetan Sriram
Gabardos, Lucas
Kwong, Chang Chi
Shen, Yijie
Ruostekoski, Janne
Wilkowski, David
Optics
Atomic Physics
The ability of structured light to mimic exotic topological skyrmion textures, encountered in high-energy physics, cosmology, magnetic materials, and superfluids has recently received considerable attention. Despite their promise as mechanisms for data encoding and storage, there has been a lack of studies addressing the transfer and storage of the topology of optical skyrmions to matter. Here, we demonstrate a high-fidelity mapping of skyrmion topology from a laser beam onto a gas of cold atoms, where it is detected in its new non-propagating form. Within the spatial overlap of the beam and atom cloud, the skyrmion topological charge is preserved, with a reduction from $Q \simeq 0.91$ to $Q \simeq 0.84$ mainly due to the beam width exceeding the sample size. Our work potentially opens novel avenues for topological photonics state storage and the analysis of more complex structured light topologies.
title Topological optical skyrmion transfer to matter
topic Optics
Atomic Physics
url https://arxiv.org/abs/2503.22534