Novel Highly Efficient Buried Gratings for Selective Coupling of SPP Waves onto Single Interfaces

Author:

Nabizada Arif1ORCID,Tari Hamed1ORCID,Bile Alessandro1ORCID,Fazio Eugenio1ORCID

Affiliation:

1. Department of Fundamental and Applied Sciences for Engineering, Sapienza Università di Roma, Via Scarpa 16, 00161 Rome, Italy

Abstract

Diffraction gratings have always been used to effectively couple optical radiation within integrated waveguides. This is also valid for plasmonic structures that support Surface Plasmon Polariton (SPP) waves. Traditional gratings usually excite SPP waves at the interface where they are located or, for thin metal nanostrips, at both interfaces. But reducing the thickness of the metal layer in the presence of a grating has the handicap of increasing the tunnelling of light towards the substrate, which means higher losses and reduced coupling efficiency. In this paper, we design and optimize novel gratings buried within the metallic thin films for selective coupling of SPP waves onto individual interfaces. Compared with traditional superficial gratings, the novel buried ones demonstrate higher efficiency and much lower residual tunnelling of light through the coupling structures.

Funder

Sapienza Università di Roma

European Union

Publisher

MDPI AG

Reference20 articles.

1. Raether, H. (2006). Surface Plasmons on Smooth and Rough Surfaces and on Gratings, Springer.

2. Bozhevolnyi, S.I. (2019). Plasmonic Nanoguides and Circuits, Jenny Stanford Publishing.

3. Surface plasmon subwavelength optics;Barnes;Nature,2003

4. Plasmonics: Merging photonics and electronics at nanoscale dimensions;Ozbay;Science,2006

5. Radiative decay of non radiative surface plasmons excited by light;Kretschmann;Z. Naturforschung A,1968

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