Topological Optical Waveguiding of Exciton‐Polariton Condensates

Author:

Beierlein J.1,Egorov O. A.2,Gagel P.1,Harder T. H.1,Wolf A.1,Emmerling M.1,Betzold S.1,Jabeen F.1,Ma L.3,Höfling S.1,Peschel U.2,Klembt S.1ORCID

Affiliation:

1. Technische Physik, Wilhelm‐Conrad‐Röntgen‐Research Center for Complex Material Systems, and Würzburg‐Dresden Cluster of Excellence ct.qmat Universität Würzburg Am Hubland D‐97074 Würzburg Germany

2. Institute of Condensed Matter Theory and Optics Friedrich‐Schiller‐Universität Jena Max‐Wien‐Platz 1 D‐07743 Jena Germany

3. Institute for Integrative Nanosciences Leibniz IFW Dresden, and Würzburg‐Dresden Cluster of Excellence ct.qmat D‐01069 Dresden Germany

Abstract

Abstract1D models with topological non‐trivial band structures are a simple and effective way to study novel and exciting concepts in topological photonics. In this work, the propagation of light‐matter quasi‐particles, so‐called exciton‐polaritons, is studied in waveguide arrays. Specifically, topological states are being investigated at the interface between dimer chains, characterized by a non‐zero winding number. In order to exercise precise control over the polariton propagation, non‐resonant laser excitation, as well as resonant excitation, are studied in transmission geometry. The results highlight a new platform for the study of quantum fluids of light and non‐linear optical propagation effects in coupled semiconductor waveguides.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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