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Article: Topological photonics in metamaterials

TitleTopological photonics in metamaterials
Authors
Issue Date18-Aug-2022
PublisherSociety of Photo-optical Instrumentation Engineers
Citation
Photonics Insights, 2022, v. 1, n. 1, p. 1-18 How to Cite?
Abstract

Originally a pure mathematical concept, topology has been vigorously developed in various physical systems in recent years, and underlies many interesting phenomena such as the quantum Hall effect and quantum spin Hall effect. Its widespread influence in physics led the award of the 2016 Nobel Prize in Physics to this field. Topological photonics further expands the research field of topology to classical wave systems and holds promise for novel devices and applications, e.g., topological quantum computation and topological lasers. Here, we review recent developments in topological photonics but focus mainly on their realizations based on metamaterials. Through artificially designed resonant units, metamaterials provide vast degrees of freedom for realizing various topological states, e.g., the Weyl point, nodal line, Dirac point, topological insulator, and even the Yang monopole and Weyl surface in higher-dimensional synthetic spaces, wherein each specific topological nontrivial state endows novel metamaterial responses that originate from the feature of some high-energy physics.


Persistent Identifierhttp://hdl.handle.net/10722/338938
ISSN

 

DC FieldValueLanguage
dc.contributor.authorMa, Shaojie-
dc.contributor.authorYang, Biao-
dc.contributor.authorZhang, Shuang-
dc.date.accessioned2024-03-11T10:32:40Z-
dc.date.available2024-03-11T10:32:40Z-
dc.date.issued2022-08-18-
dc.identifier.citationPhotonics Insights, 2022, v. 1, n. 1, p. 1-18-
dc.identifier.issn2791-1748-
dc.identifier.urihttp://hdl.handle.net/10722/338938-
dc.description.abstract<table><thead><tr><td><p>Originally a pure mathematical concept, topology has been vigorously developed in various physical systems in recent years, and underlies many interesting phenomena such as the quantum Hall effect and quantum spin Hall effect. Its widespread influence in physics led the award of the 2016 Nobel Prize in Physics to this field. Topological photonics further expands the research field of topology to classical wave systems and holds promise for novel devices and applications, e.g., topological quantum computation and topological lasers. Here, we review recent developments in topological photonics but focus mainly on their realizations based on metamaterials. Through artificially designed resonant units, metamaterials provide vast degrees of freedom for realizing various topological states, e.g., the Weyl point, nodal line, Dirac point, topological insulator, and even the Yang monopole and Weyl surface in higher-dimensional synthetic spaces, wherein each specific topological nontrivial state endows novel metamaterial responses that originate from the feature of some high-energy physics.</p></td></tr></thead></table>-
dc.languageeng-
dc.publisherSociety of Photo-optical Instrumentation Engineers-
dc.relation.ispartofPhotonics Insights-
dc.rightsThis work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.-
dc.titleTopological photonics in metamaterials-
dc.typeArticle-
dc.identifier.doi10.3788/PI.2022.R02-
dc.identifier.volume1-
dc.identifier.issue1-
dc.identifier.spage1-
dc.identifier.epage18-

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