Literature DB >> 32203461

Fermionic time-reversal symmetry in a photonic topological insulator.

Lukas J Maczewsky1, Bastian Höckendorf2, Mark Kremer1, Tobias Biesenthal1, Matthias Heinrich1, Andreas Alvermann3, Holger Fehske2, Alexander Szameit4.   

Abstract

Much of the recent attention directed towards topological insulators is motivated by their hallmark feature of protected chiral edge states. In electronic (or fermionic) topological insulators, these states originate from time-reversal symmetry and allow carriers with opposite spin-polarization to propagate in opposite directions at the edge of an insulating bulk. By contrast, photonic (or bosonic) systems are generally assumed to be precluded from supporting edge states that are intrinsically protected by time-reversal symmetry. Here, we experimentally demonstrate counter-propagating chiral states at the edge of a time-reversal-symmetric photonic waveguide structure. The pivotal step in our approach is the design of a Floquet driving protocol that incorporates effective fermionic time-reversal symmetry, enabling the realization of the photonic version of an electronic topological insulator. Our findings allow for fermionic properties to be harnessed in bosonic systems, thereby offering alternative opportunities for photonics as well as acoustics, mechanical waves and cold atoms.

Year:  2020        PMID: 32203461     DOI: 10.1038/s41563-020-0641-8

Source DB:  PubMed          Journal:  Nat Mater        ISSN: 1476-1122            Impact factor:   43.841


  1 in total

1.  On-chip beam rotators, adiabatic mode converters, and waveplates through low-loss waveguides with variable cross-sections.

Authors:  Bangshan Sun; Fyodor Morozko; Patrick S Salter; Simon Moser; Zhikai Pong; Raj B Patel; Ian A Walmsley; Mohan Wang; Adir Hazan; Nicolas Barré; Alexander Jesacher; Julian Fells; Chao He; Aviad Katiyi; Zhen-Nan Tian; Alina Karabchevsky; Martin J Booth
Journal:  Light Sci Appl       Date:  2022-07-07       Impact factor: 20.257

  1 in total

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