Gradient High‐Q Dielectric Metasurfaces for Broadband Sensing and Control of Vibrational Light‐Matter Coupling

Author:

Richter Felix Ulrich1ORCID,Sinev Ivan1,Zhou Senlu1,Leitis Aleksandrs1,Oh Sang‐Hyun2,Tseng Ming Lun3,Kivshar Yuri4ORCID,Altug Hatice1

Affiliation:

1. Institute of Bioengineering École Polytechnique Fédérale de Lausanne (EPFL) Lausanne 1015 Switzerland

2. Department of Electrical and Computer Engineering University of Minnesota Minneapolis MN 55455 USA

3. Institute of Electronics National Yang Ming Chiao Tung University Hsinchu 300 Taiwan

4. Nonlinear Physics Center Research School of Physics Australian National University Canberra ACT 2601 Australia

Abstract

AbstractSurface‐enhanced infrared absorption spectroscopy (SEIRA) has emerged as a powerful technique for ultrasensitive chemical‐specific analysis. SEIRA can be realized by employing metasurfaces that can enhance light‐matter interactions in the spectral bands of molecular vibrations. Increasing sample complexity emphasizes the need for metasurfaces that can operate simultaneously at different spectral bands, both accessing rich spectral information over a broad band, and resolving subtle differences in the absorption fingerprints through narrow‐band resonances. Here, a novel concept of resonance‐gradient metasurfaces is introduced, where the required spectral selectivity is achieved via local high‐quality‐factor (high‐Q) resonances, while the continuous coverage of a broad band is enabled by the gradual adjustment of the unit‐cell dimensions along the planar structure. The highly tailorable design of the gradient metasurfaces provides flexibility for shaping the spectral sampling density to match the relevant bands of target analytes while keeping a compact device footprint. The versatility of the gradient metasurfaces is demonstrated through several sensing scenarios, including polymer mixture deconvolution, detecting a multistep bioassay, and identification of the onset of vibrational strong coupling regime. The proposed gradient‐resonance platform significantly contributes to the rapidly evolving landscape of nonlocal metasurfaces, enabling applications in molecular detection and analysis of fundamental light‐matter interaction phenomena.

Funder

Ministry of Education

Army Research Office

Australian Research Council

HORIZON EUROPE European Innovation Council

H2020 European Research Council

National Science and Technology Council

Publisher

Wiley

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