Polarization‐Tuned Fano Resonances in All‐Dielectric Short‐Wave Infrared Metasurface

Author:

Attiaoui Anis1,Daligou Gérard1,Assali Simone1,Skibitzki Oliver2,Schroeder Thomas3,Moutanabbir Oussama1ORCID

Affiliation:

1. Department of Engineering Physics École Polytechnique de Montréal C.P. 6079, Succ. Centre‐Ville Montréal Québec H3C 3A7 Canada

2. IHP‐Leibniz‐Institut für innovative Mikroelektronik Im Technologiepark 25 15236 Frankfurt (Oder) Germany

3. Leibniz‐Institut für Kristallzüchtung Max‐Born‐Straße 2 12489 Berlin Germany

Abstract

AbstractThe short‐wave infrared (SWIR) is an underexploited portion of the electromagnetic spectrum in metasurface‐based nanophotonics despite its strategic importance in sensing and imaging applications. This is mainly attributed to the lack of material systems to tailor light–matter interactions in this range. Herein, this limitation is addressed and an all‐dielectric silicon‐integrated metasurface enabling polarization‐induced Fano resonance control at SWIR frequencies is demonstrated. The platform consists of a 2D Si/Ge0.9Sn0.1 core/shell nanowire array on a silicon wafer. By tuning the light polarization, it is shown that the metasurface reflectance can be efficiently engineered due to Fano resonances emerging from the electric and magnetic dipoles competition. The interference of optically induced dipoles in high‐index nanowire arrays offers additional degrees of freedom to tailor the directional scattering and the flow of light while enabling sharp polarization‐modulated resonances. This tunablity is harnessed in nanosensors yielding an efficient detection of 10−2 changes in the refractive index of the surrounding medium.

Funder

Canada Research Chairs

Canada Foundation for Innovation

Mitacs

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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