The highly engineerable scattering properties of resonant optical antennas underpin the operation of metasurface-based flat optics. Thus far, the choice of antenna has been limited to shaped metallic and high-index semiconductor nanostructures that support geometrical plasmonic or Mie resonances. Whereas these resonant elements offer strong light–matter interaction and excellent control over the scattering phase and amplitude, their electrical tunability has proven to be quite limited. Here, we demonstrate how excitonic resonances in atomically thin semiconductors can be harnessed as a different, third type of resonance to create mutable, flat optics. These strong materials-based resonances are unmatched in their tunability with various ext...
Localized plasmon resonance of a metal nanoantenna is determined by its size, shape and environment....
Techniques to mold the flow of light on subwavelength scales enable fundamentally new optical system...
In atomically thin semiconductors, localized exciton (X-L) coupled to light provides a new class of ...
Tunable metamaterials belonging to the class of different reconfigurable optical devices have proved...
Electromagnetically induced transparency (EIT) arises because of quantum interference between electr...
Optically induced Mie resonances in dielectric nanoantennas feature low dissipative losses and a lar...
Optically induced Mie resonances in dielectric nanoantennas feature low dissipative losses and a lar...
Subwavelength, high-refractive index semiconductor nanostructures support optical resonances that en...
Mie resonances in high-refractive-index nanoparticles have been known for a long time but only recen...
Featured Application ultra-thin optical components, metasurfaces. Abstract Mie resonances in high-re...
University of Exeter Physics and AstronomyThrough the use of analytic models and numerical simulatio...
Metasurfaces which emerged as two-dimensional counterparts of metamaterials, facilitate the realizat...
We report an experimental demonstration of electrical tuning of plasmon resonances of optical nanopa...
We propose the design of a dielectric flat lens for visible wavelengths, capable of efficiently focu...
Monolayer transition metal dichalcogenides (TMDCs) have recently been proposed as an excitonic platf...
Localized plasmon resonance of a metal nanoantenna is determined by its size, shape and environment....
Techniques to mold the flow of light on subwavelength scales enable fundamentally new optical system...
In atomically thin semiconductors, localized exciton (X-L) coupled to light provides a new class of ...
Tunable metamaterials belonging to the class of different reconfigurable optical devices have proved...
Electromagnetically induced transparency (EIT) arises because of quantum interference between electr...
Optically induced Mie resonances in dielectric nanoantennas feature low dissipative losses and a lar...
Optically induced Mie resonances in dielectric nanoantennas feature low dissipative losses and a lar...
Subwavelength, high-refractive index semiconductor nanostructures support optical resonances that en...
Mie resonances in high-refractive-index nanoparticles have been known for a long time but only recen...
Featured Application ultra-thin optical components, metasurfaces. Abstract Mie resonances in high-re...
University of Exeter Physics and AstronomyThrough the use of analytic models and numerical simulatio...
Metasurfaces which emerged as two-dimensional counterparts of metamaterials, facilitate the realizat...
We report an experimental demonstration of electrical tuning of plasmon resonances of optical nanopa...
We propose the design of a dielectric flat lens for visible wavelengths, capable of efficiently focu...
Monolayer transition metal dichalcogenides (TMDCs) have recently been proposed as an excitonic platf...
Localized plasmon resonance of a metal nanoantenna is determined by its size, shape and environment....
Techniques to mold the flow of light on subwavelength scales enable fundamentally new optical system...
In atomically thin semiconductors, localized exciton (X-L) coupled to light provides a new class of ...