Nanofocusing of acoustic graphene plasmon polaritons for enhancing mid-infrared molecular fingerprints

Author:

Voronin Kirill V.12ORCID,Aseguinolaza Aguirreche Unai345,Hillenbrand Rainer67,Volkov Valentyn S.1,Alonso-González Pablo89,Nikitin Alexey Y.410ORCID

Affiliation:

1. Center for Photonics and 2D Materials , Moscow Institute of Physics and Technology , Dolgoprudny, 141700 , Russia

2. Skolkovo Institute of Science and Technology , Moscow, 121205 , Russia

3. Centro de Fìsica de Materiales CFM , CSIC-UPV/EHU , Donostia-San Sebastian, 20018 , Spain

4. Donostia International Physics Center (DIPC) , Donostia-San Sebastian, 20018 , Spain

5. Fisika Aplikatua 1 Saila, Gipuzkoako Ingenieritza Eskola , University of the Basque Country (UPV/EHU) , Donostia-San Sebastian, 20018 , Spain

6. CIC nanoGUNE BRTA and Department of Electricity and Electronics , UPV/EHU , Donostia-San Sebastian, 20018 , Spain

7. IKERBASQUE-Basque Foundation for Science , Bilbao, 48011 , Spain

8. Department of Physics , University of Oviedo , Oviedo, 33006 , Spain

9. Center of Research on Nanomaterials and Nanotechnology , CINN (CSIC–Universidad de Oviedo) , El Entrego, 33940 , Spain

10. IKERBASQUE-Basque Foundation for Science , Bilbao, 48013 , Spain

Abstract

Abstract Mid-infrared (mid-IR) optical spectroscopy of molecules is of large interest in physics, chemistry, and biology. However, probing nanometric volumes of molecules is challenging because of the strong mismatch of their mid-infrared absorption and scattering cross-sections with the free-space wavelength. We suggest overcoming this difficulty by nanofocusing acoustic graphene plasmon polaritons (AGPs) – oscillations of Dirac charge carriers coupled to electromagnetic fields with extremely small wavelengths – using a taper formed by a graphene sheet above a metallic surface. We demonstrate that due to the appreciable field enhancement and mode volume reduction, the nanofocused AGPs can efficiently sense molecular fingerprints in nanometric volumes. We illustrate a possible realistic sensing sсenario based on AGP interferometry performed with a near-field microscope. Our results can open new avenues for designing tiny sensors based on graphene and other 2D polaritonic materials.

Funder

Spanish Ministry of Science, Innovation and Universities

Russian Science Foundation

European Research Council

Spanish Ministry of Economy, Industry, and Competitiveness

Basque Government

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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