Plasmonic materials provide electric-field localization and light confinement at subwavelength scales due to strong light-matter interaction around resonance frequencies. Graphene has been recently studied as an atomically thin plasmonic material for infrared and terahertz wavelengths. Here, we theoretically investigate localized surface plasmon resonances (LSPR) in a monolayer, nanostructured black phosphorus (BP). Using finite-difference time-domain simulations, we demonstrate LSPRs at mid-infrared and far-infrared wavelength regime in BP nanoribbon and nanopatch arrays. Because of strong anisotropic in-plane properties of black phosphorus emerging from its puckered crystal structure, black phosphorus nanostructures provide polarization d...
We investigate the electro-optic properties of black phosphorus (BP) thin films for optical modulati...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Plasmonic materials provide electric-field localization and light confinement at subwavelength scale...
The behaviors of anisotropic plasmons in black phosphorus have been fully exploited across a complet...
Acoustic plasmon modes tightly coupled between a two-dimensional material and another conducting lay...
Tailoring photonics for monolithic integration beyond the diffraction limit opens a new era of nanos...
The plasmonic responses in the spatially separated phosphorene (single-layer black phosphorus) pairs...
Black phosphorus (bP), a two-dimensional (2D) layered material, has shown great potential for infrar...
We study collective plasmon excitations and screening of pure and disordered single- and bilayer bla...
Plasmonics takes advantage of the collective response of electrons to electromagnetic waves, enablin...
Recently, various groups have demonstrated nano-scale engineering of nanostructures for optical to i...
Light incident on a metallic structure excites collective oscillations of electrons termed as plasmo...
The main focus of this work is to investigate two potential optical and optoelectronic applications ...
Black phosphorus (BP), a novel natural two-dimensional layered material with intrinsic in-plane anis...
We investigate the electro-optic properties of black phosphorus (BP) thin films for optical modulati...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Plasmonic materials provide electric-field localization and light confinement at subwavelength scale...
The behaviors of anisotropic plasmons in black phosphorus have been fully exploited across a complet...
Acoustic plasmon modes tightly coupled between a two-dimensional material and another conducting lay...
Tailoring photonics for monolithic integration beyond the diffraction limit opens a new era of nanos...
The plasmonic responses in the spatially separated phosphorene (single-layer black phosphorus) pairs...
Black phosphorus (bP), a two-dimensional (2D) layered material, has shown great potential for infrar...
We study collective plasmon excitations and screening of pure and disordered single- and bilayer bla...
Plasmonics takes advantage of the collective response of electrons to electromagnetic waves, enablin...
Recently, various groups have demonstrated nano-scale engineering of nanostructures for optical to i...
Light incident on a metallic structure excites collective oscillations of electrons termed as plasmo...
The main focus of this work is to investigate two potential optical and optoelectronic applications ...
Black phosphorus (BP), a novel natural two-dimensional layered material with intrinsic in-plane anis...
We investigate the electro-optic properties of black phosphorus (BP) thin films for optical modulati...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...