Fano collective resonance as complex mode in a two dimensional planar metasurface of plasmonic nanoparticles
Salvatore Campione, Domenico de Ceglia, Caner Guclu, Maria A., Vincenti, Michael Scalora, Filippo Capolino

TL;DR
This paper investigates Fano resonances in 2D plasmonic nanoparticle metasurfaces, revealing their origin as collective free modes and analyzing their physical properties for potential optical device applications.
Contribution
It provides a comprehensive modal analysis of Fano resonances in plasmonic metasurfaces, highlighting the role of collective free modes and their dependence on array properties.
Findings
Identification of two types of absorption peaks: Mie dipolar and collective Fano resonances.
Demonstration of the influence of array coupling on Fano resonance characteristics.
Establishment of a link between modal phase, attenuation, and Fano resonance features.
Abstract
Fano resonances are features in transmissivity/reflectivity/absorption that owe their origin to the interaction between a bright resonance and a dark (i.e., sub-radiant) narrower resonance, and may emerge in the optical properties of planar two-dimensional (2D) periodic arrays (metasurfaces) of plasmonic nanoparticles. In this Letter, we provide a thorough assessment of their nature for the general case of normal and oblique plane wave incidence, highlighting when a Fano resonance is affected by the mutual coupling in an array and its capability to support free modal solutions. We analyze the representative case of a metasurface of plasmonic nanoshells at ultraviolet frequencies and compute its absorption under TE- and TM-polarized, oblique plane-wave incidence. In particular, we find that plasmonic metasurfaces display two distinct types of resonances observable as absorption peaks:…
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