Tunable Mid‐Infrared Multi‐Resonant Graphene‐Metal Hybrid Metasurfaces

Author:

Han Fei12ORCID,Pham The Linh1ORCID,Pilarczyk Kacper13ORCID,Tung Nguyen Thanh4ORCID,Le Dinh Hai5,Vandenbosch Guy A. E.67ORCID,Van de Vondel Joris1ORCID,Verellen Niels12ORCID,Zheng Xuezhi67ORCID,Janssens Ewald1ORCID

Affiliation:

1. Quantum Solid‐State Physics Department of Physics and Astronomy KU Leuven Celestijnenlaan 200D Leuven 3001 Belgium

2. IMEC Kapeldreef 75 Leuven 3001 Belgium

3. Faculty of Physics and Applied Computer Science AGH University of Science and Technology al. A. Mickiewicza 30 Kraków 30‐059 Poland

4. Institute of Materials Science Vietnam Academy of Science and Technology 18 Hoang Quoc Viet Hanoi 11307 Vietnam

5. School of Engineering and Information Technology University of New South Wales Campbell ACT 2600 Australia

6. WaveCoRE Research Group ESAT KU Leuven Kasteelpark Arenberg 10 Leuven 3001 Belgium

7. Polariton‐driven Light‐Matter Interactions (POLIMA) University of Southern Denmark Campusvej 55 Odense 5230 Denmark

Abstract

AbstractElectrically tunable graphene‐metal metasurfaces with controllable optical properties have attracted interest for straightforward manipulation of free space light. Their resonance tuning range depends on graphene's electrical transport characteristics, which are affected by its quality, operating conditions, and the device design. An important example of the latter is the direct contact of metallic antennas with the graphene layer that limits the extent to which a bias voltage can tune the metasurface's permittivity. In this work, this issue is resolved in a straightforward and fabrication‐efficient way for graphene‐metal hybrid metasurfaces with multiple plasmonic resonances. It is demonstrated that the incorporation of a 10 nm Al2O3 barrier layer enhances the tuning range of mid‐infrared resonances compared to metasurfaces without barrier layer, i.e., from 300 to 700 nm for a 7.3 µm resonance and from 110 to 140 nm for a 4.7 µm resonance. The improved tunability of the metal/dielectric/graphene metasurface can be attributed to the reduced electrical coupling between metal and graphene, as confirmed by an equivalent circuit model. These results bring closer the use of active metasurfaces based on two‐dimensional materials under ambient conditions, with possible applications as optical filters, modulators, and information processing devices that require dynamic control of light.

Funder

Fonds Wetenschappelijk Onderzoek

KU Leuven

China Scholarship Council

Danmarks Grundforskningsfond

Narodowa Agencja Wymiany Akademickiej

National Foundation for Science and Technology Development

Publisher

Wiley

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