Skyrmions based on optical anisotropy for topological encoding

Fuente: arXiv
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Autores principales: Zhang, Yunqi, Wang, An Aloysius, Zhang, Runchen, Zhao, Zimo, Ma, Yifei, Liu, Ruofu, Pong, Zhi-Kai, Cai, Yuxi, He, Chao
Formato: Preprint
Publicado: 2025
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author Zhang, Yunqi
Wang, An Aloysius
Zhang, Runchen
Zhao, Zimo
Ma, Yifei
Liu, Ruofu
Pong, Zhi-Kai
Cai, Yuxi
He, Chao
author_facet Zhang, Yunqi
Wang, An Aloysius
Zhang, Runchen
Zhao, Zimo
Ma, Yifei
Liu, Ruofu
Pong, Zhi-Kai
Cai, Yuxi
He, Chao
contents The observation of skyrmions across diverse physical domains suggests that they are universal features of S$^{2}$-valued fields, reflecting the ubiquity of topology in the study of the natural world. In this paper, we develop an abstract technique of parameter space dimensionality reduction that extends the skyrmion framework to fields taking values in manifolds of dimension greater than 2, thereby broadening the range of systems that can support skyrmions. To prove that this is more than just a mathematical abstraction, we apply our technique to light-matter interactions, directly encoding skyrmionic structures into the optical anisotropy of spatially varying structured matter by selecting a distinguished axis, an approach fundamentally different from the more commonly known skyrmions formed by director fields in liquid crystals. We experimentally realize such skyrmions using a liquid-crystal-based tunable elliptical retarder array as a proof-of-concept platform and demonstrate complex, reconfigurable skyrmionic states exhibiting topological robustness under artificially introduced stochastic perturbations. Exploiting this robustness, we demonstrate a promising application of skyrmions in topologically protected information storage and provide an easily verifiable rule, which we term the 60° rule, that serves as a practical engineering criterion for guaranteeing robustness against noise and measurement errors.
format Preprint
id arxiv_https___arxiv_org_abs_2508_16483
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Skyrmions based on optical anisotropy for topological encoding
Zhang, Yunqi
Wang, An Aloysius
Zhang, Runchen
Zhao, Zimo
Ma, Yifei
Liu, Ruofu
Pong, Zhi-Kai
Cai, Yuxi
He, Chao
Optics
The observation of skyrmions across diverse physical domains suggests that they are universal features of S$^{2}$-valued fields, reflecting the ubiquity of topology in the study of the natural world. In this paper, we develop an abstract technique of parameter space dimensionality reduction that extends the skyrmion framework to fields taking values in manifolds of dimension greater than 2, thereby broadening the range of systems that can support skyrmions. To prove that this is more than just a mathematical abstraction, we apply our technique to light-matter interactions, directly encoding skyrmionic structures into the optical anisotropy of spatially varying structured matter by selecting a distinguished axis, an approach fundamentally different from the more commonly known skyrmions formed by director fields in liquid crystals. We experimentally realize such skyrmions using a liquid-crystal-based tunable elliptical retarder array as a proof-of-concept platform and demonstrate complex, reconfigurable skyrmionic states exhibiting topological robustness under artificially introduced stochastic perturbations. Exploiting this robustness, we demonstrate a promising application of skyrmions in topologically protected information storage and provide an easily verifiable rule, which we term the 60° rule, that serves as a practical engineering criterion for guaranteeing robustness against noise and measurement errors.
title Skyrmions based on optical anisotropy for topological encoding
topic Optics
url https://arxiv.org/abs/2508.16483