Second harmonic generation in glass-based metasurfaces using tailored surface lattice resonances

Author:

Das Gupta Tapajyoti1ORCID,Martin-Monier Louis2,Butet Jeremy2,Yang Kuang-Yu2,Leber Andreas2,Dong Chaoqun2,Nguyen-Dang Tung3,Yan Wei4,Martin Olivier J. F.2,Sorin Fabien2

Affiliation:

1. Indian Institute of Science , Bangalore , 560012 , India

2. Ecole Polytechnique Federale de Lausanne , Lausanne , VD , Switzerland

3. Center for Polymers and Organic Solids, University of California Santa Barbara , Chemistry Building, Room 3132 , Santa Barbara , CA , 93106-9010 , USA

4. MIT , 77 Massachusetts Ave , Cambridge , MA , 02139-4307 , USA

Abstract

Abstract Dielectric metasurfaces have shown prominent applications in nonlinear optics due to strong field enhancement and low dissipation losses at the nanoscale. Chalcogenide glasses are one of the promising materials for the observation of nonlinear effects thanks to their high intrinsic nonlinearities. Here, we demonstrate, experimentally and theoretically, that significant second harmonic generation (SHG) can be obtained within amorphous Selenium (Se)-based chalcogenide metasurfaces by exploiting the coupling between lattice and particle resonances. We further show that the high-quality factor resonance at the origin of the SHG can be tuned over a wide wavelength range using a simple and versatile fabrication approach. The measured second harmonic intensity is orders of magnitude higher than that from a dewetted Se film consisting of random Se nanoparticles. The achieved conversion efficiency in the resonance region is of the order of 10−6 which is comparable with direct bandgap materials and at least two orders of magnitude higher than that of conventional plasmonics- and Si-based structures. Fabricated via a simple and scalable technique, these all-dielectric architectures are ideal candidates for the design of flat nonlinear optical components on flexible substrates.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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