Photonic antiferromagnetic topological insulator with a single surface Dirac cone
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arXiv
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| Autori principali: | , , , , , , , , , , , , , , |
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| Natura: | Preprint |
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2025
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| _version_ | 1866915101139795968 |
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| author | Chen, Fujia Han, Ning Pu, Songyang Zhao, Rui Zhang, Li Chen, Qiaolu Hu, Yuze Tong, Mingyu Li, Wenhao Wu, Junyao Li, Yudong Ren Xinrui Yin, Wenyan Chen, Hongsheng Zhang, Rui-Xing Yang, Yihao |
| author_facet | Chen, Fujia Han, Ning Pu, Songyang Zhao, Rui Zhang, Li Chen, Qiaolu Hu, Yuze Tong, Mingyu Li, Wenhao Wu, Junyao Li, Yudong Ren Xinrui Yin, Wenyan Chen, Hongsheng Zhang, Rui-Xing Yang, Yihao |
| contents | Antiferromagnetism, characterized by magnetic moments aligned in alternating directions with a vanished ensemble average, has garnered renewed interest for its potential applications in spintronics and axion dynamics. The synergy between antiferromagnetism and topology can lead to the emergence of an exotic topological phase unique to certain magnetic order, termed antiferromagnetic topological insulators (AF TIs). A hallmark signature of AF TIs is the presence of a single surface Dirac cone--a feature typically associated with strong three-dimensional (3D) topological insulators--only on certain symmetry-preserving crystal terminations. However, the direct observation of this phenomenon poses a significant challenge. Here, we have theoretically and experimentally discovered a 3D photonic AF TI hosting a single surface Dirac cone protected by the combined symmetry of time reversal and half-lattice translation. Conceptually, our setup can be viewed as a z-directional stack of two-dimensional Chern insulators, with adjacent layers oppositely magnetized to form a 3D type-A AF configuration. By measuring both bulk and surface states, we have directly observed the symmetry-protected gapless single-Dirac-cone surface state, which shows remarkable robustness against random magnetic disorders. Our work constitutes the first realization of photonic AF TIs and photonic analogs of strong topological insulators, opening a new chapter for exploring novel topological photonic devices and phenomena that incorporate additional magnetic degrees of freedom. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2501_07424 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Photonic antiferromagnetic topological insulator with a single surface Dirac cone Chen, Fujia Han, Ning Pu, Songyang Zhao, Rui Zhang, Li Chen, Qiaolu Hu, Yuze Tong, Mingyu Li, Wenhao Wu, Junyao Li, Yudong Ren Xinrui Yin, Wenyan Chen, Hongsheng Zhang, Rui-Xing Yang, Yihao Optics Antiferromagnetism, characterized by magnetic moments aligned in alternating directions with a vanished ensemble average, has garnered renewed interest for its potential applications in spintronics and axion dynamics. The synergy between antiferromagnetism and topology can lead to the emergence of an exotic topological phase unique to certain magnetic order, termed antiferromagnetic topological insulators (AF TIs). A hallmark signature of AF TIs is the presence of a single surface Dirac cone--a feature typically associated with strong three-dimensional (3D) topological insulators--only on certain symmetry-preserving crystal terminations. However, the direct observation of this phenomenon poses a significant challenge. Here, we have theoretically and experimentally discovered a 3D photonic AF TI hosting a single surface Dirac cone protected by the combined symmetry of time reversal and half-lattice translation. Conceptually, our setup can be viewed as a z-directional stack of two-dimensional Chern insulators, with adjacent layers oppositely magnetized to form a 3D type-A AF configuration. By measuring both bulk and surface states, we have directly observed the symmetry-protected gapless single-Dirac-cone surface state, which shows remarkable robustness against random magnetic disorders. Our work constitutes the first realization of photonic AF TIs and photonic analogs of strong topological insulators, opening a new chapter for exploring novel topological photonic devices and phenomena that incorporate additional magnetic degrees of freedom. |
| title | Photonic antiferromagnetic topological insulator with a single surface Dirac cone |
| topic | Optics |
| url | https://arxiv.org/abs/2501.07424 |