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Main Authors: Hu, Yuze, Tong, Mingyu, Jiang, Tian, Yang, Shuxing, Han, Ning, Chen, Fujia, Zhang, Li, Zhao, Rui, Chen, Qiaolu, Chen, Hongsheng, Ünal, F. Nur, Slager, Robert-Jan, Yang, Yihao
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2603.04489
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author Hu, Yuze
Tong, Mingyu
Jiang, Tian
Yang, Shuxing
Han, Ning
Chen, Fujia
Zhang, Li
Zhao, Rui
Chen, Qiaolu
Chen, Hongsheng
Ünal, F. Nur
Slager, Robert-Jan
Yang, Yihao
author_facet Hu, Yuze
Tong, Mingyu
Jiang, Tian
Yang, Shuxing
Han, Ning
Chen, Fujia
Zhang, Li
Zhao, Rui
Chen, Qiaolu
Chen, Hongsheng
Ünal, F. Nur
Slager, Robert-Jan
Yang, Yihao
contents The concept of multi-gap topology has recently been shown to give rise to uncharted phases beyond conventional single-gap classifications. These phases relate to band nodes with non-Abelian quaternion charges and momentum-space braiding processes characterized by new invariants such as paradigmatic Euler class, phenomena that intrinsically require at least two spatial dimensions. Extending such phases into the non-equilibrium regime is predicted to unlock even richer multi-gap topologies beyond static settings, yet their experimental realization has remained elusive due to the stringent requirements on dimensionality, symmetry, and dynamical control. Here, we theoretically demonstrate and, for the first time, experimentally realize two-dimensional (2D) Floquet non-Abelian band topology in photonic scattering networks. Within this platform, we uncover a sequence of topological phenomena unique to 2D multi-gap systems far from equilibrium, including anomalous multi-gap phases interconnected by band nodes, Floquet Euler transfer, gapped phases with anomalous Dirac string configurations, and Floquet-induced non-Abelian braiding of band nodes. In addition, we observe Floquet-periodic anomalous edge states across multiple gaps, providing experimental signatures of these sought-after 2D multi-gap Floquet topological phases. Our results establish photonic scattering networks as a practical and versatile route to non-Abelian Floquet systems, opening avenues for dynamical topological physics with braiding capability and robust photonic functionalities.
format Preprint
id arxiv_https___arxiv_org_abs_2603_04489
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Realizing anomalous Floquet non-Abelian band topology in photonic scattering networks
Hu, Yuze
Tong, Mingyu
Jiang, Tian
Yang, Shuxing
Han, Ning
Chen, Fujia
Zhang, Li
Zhao, Rui
Chen, Qiaolu
Chen, Hongsheng
Ünal, F. Nur
Slager, Robert-Jan
Yang, Yihao
Optics
Disordered Systems and Neural Networks
Materials Science
Quantum Physics
The concept of multi-gap topology has recently been shown to give rise to uncharted phases beyond conventional single-gap classifications. These phases relate to band nodes with non-Abelian quaternion charges and momentum-space braiding processes characterized by new invariants such as paradigmatic Euler class, phenomena that intrinsically require at least two spatial dimensions. Extending such phases into the non-equilibrium regime is predicted to unlock even richer multi-gap topologies beyond static settings, yet their experimental realization has remained elusive due to the stringent requirements on dimensionality, symmetry, and dynamical control. Here, we theoretically demonstrate and, for the first time, experimentally realize two-dimensional (2D) Floquet non-Abelian band topology in photonic scattering networks. Within this platform, we uncover a sequence of topological phenomena unique to 2D multi-gap systems far from equilibrium, including anomalous multi-gap phases interconnected by band nodes, Floquet Euler transfer, gapped phases with anomalous Dirac string configurations, and Floquet-induced non-Abelian braiding of band nodes. In addition, we observe Floquet-periodic anomalous edge states across multiple gaps, providing experimental signatures of these sought-after 2D multi-gap Floquet topological phases. Our results establish photonic scattering networks as a practical and versatile route to non-Abelian Floquet systems, opening avenues for dynamical topological physics with braiding capability and robust photonic functionalities.
title Realizing anomalous Floquet non-Abelian band topology in photonic scattering networks
topic Optics
Disordered Systems and Neural Networks
Materials Science
Quantum Physics
url https://arxiv.org/abs/2603.04489