Graphene coated on top of photonic-plasmonic metasurfaces can produce resonant radiative emission in the mid-infrared region. Narrowband emission peaks are observed through folding graphene into “origami” ridges over metal grating grooves, creating a complementary cavity mode above the trench. This geometrically tuned phenomenon of graphene surface plasmon excitation along the folded sheet enhances the emission when added to magnetic polariton (MP) resonance induced within the plasmonic grating groove. Our analytical models describe how this graphene surface plasmon polariton (SPPG) is a function of folded graphene geometric parameters, and most importantly, the graphene edge angle that distends from the grating surface. The frequency-depen...
The work, presented in this thesis, focuses on studying graphene as a signal enhancing material for ...
We propose a simple way to create tunable plasmonic cavities in the infrared (IR) range using graphe...
In this paper, we numerically and theoretically investigate the propagation of surface plasmon polar...
We experimentally demonstrated graphene plasmon resonant absorption in mid-IR by utilizing an array ...
Light incident on a metallic structure excites collective oscillations of electrons termed as plasmo...
International audienceIn this paper, magnetoplasmonic manipulation of near-field radiative heat tran...
The unique properties of graphene when coupled to plasmonic surfaces render a very interesting physi...
We discuss the renormalization of the polarizability of a nanoparticle in the presence of either: (1...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Dynamic switching of a plasmonic resonance may find numerous applications in subwavelength optoelect...
A multiple plasmon-induced transparency (PIT) device operated in the mid-infrared region has been pr...
Graphene is widely known for its anomalously strong broadband optical absorptivity of 2.3% that enab...
Graphene is a two-dimensional (2D) material, and it has many applications in electronics and photoni...
The majority of the proposed graphene-based THz devices consist of a metamaterial that can optically...
In view of the applications of Forster resonant energy transfer (FRET) in biological systems which e...
The work, presented in this thesis, focuses on studying graphene as a signal enhancing material for ...
We propose a simple way to create tunable plasmonic cavities in the infrared (IR) range using graphe...
In this paper, we numerically and theoretically investigate the propagation of surface plasmon polar...
We experimentally demonstrated graphene plasmon resonant absorption in mid-IR by utilizing an array ...
Light incident on a metallic structure excites collective oscillations of electrons termed as plasmo...
International audienceIn this paper, magnetoplasmonic manipulation of near-field radiative heat tran...
The unique properties of graphene when coupled to plasmonic surfaces render a very interesting physi...
We discuss the renormalization of the polarizability of a nanoparticle in the presence of either: (1...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Dynamic switching of a plasmonic resonance may find numerous applications in subwavelength optoelect...
A multiple plasmon-induced transparency (PIT) device operated in the mid-infrared region has been pr...
Graphene is widely known for its anomalously strong broadband optical absorptivity of 2.3% that enab...
Graphene is a two-dimensional (2D) material, and it has many applications in electronics and photoni...
The majority of the proposed graphene-based THz devices consist of a metamaterial that can optically...
In view of the applications of Forster resonant energy transfer (FRET) in biological systems which e...
The work, presented in this thesis, focuses on studying graphene as a signal enhancing material for ...
We propose a simple way to create tunable plasmonic cavities in the infrared (IR) range using graphe...
In this paper, we numerically and theoretically investigate the propagation of surface plasmon polar...