Metasurfaces, together with graphene plasmonics, have become prominent for the emissivity control in thermal engineering, both passively through changing the geometric parameters and packing density of the metasurfaces, and actively through graphene gating or doping. We demonstrate a graphene-nanowire coupled plasmonic metasurface utilizing the hybrid localized surface plasmon modes of the nanowire array and graphene. The nanowire array makes the hybrid surface plasmon mode localized, allowing a free-space excitation. The single layer graphene, via the gating between the underneath mirror and a top electrode, can actively tune the spectral emissivity by almost 90%. In addition, the hybrid plasmon mode provides an extra degree of freedom to ...
<p>As one emerging plasmonic material, graphene can support surface plasmons at infrared and teraher...
All substances above zero kelvin temperature emit fluctuating electromagnetic waves due to the rando...
ABSTRACT: Semiconductor nanowires, due to their unique electronic, optical, and chemical properties,...
Components smaller than the wavelength of electromagnetic waves are called meta-atoms. Thermal emiss...
We demonstrate a dynamic surface plasmonic modulation based on graphene-nanowire (grapheme-NW) hybri...
Near-field radiative heat transfer (NFRHT) in many-body systems has opened pathways for enabling nov...
The present work focuses on theoretically research on the spontaneous emission and the energy transf...
Research in nanophotonic materials and design is yielding advances that are opening conceptually new...
Radiative heat transfer is the mechanism by which objects, in absence of conduction and convection, ...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resultin...
We report the temperature dependent photoluminescence (PL) properties of monolayer graphene-Au-nanop...
We demonstrate a dynamic surface plasmonic modulation based on graphene-nanowire hybrid structures a...
We present a thermal device based on the near-field interaction between two substrates made of a pol...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2015.Cataloged from PD...
<p>As one emerging plasmonic material, graphene can support surface plasmons at infrared and teraher...
All substances above zero kelvin temperature emit fluctuating electromagnetic waves due to the rando...
ABSTRACT: Semiconductor nanowires, due to their unique electronic, optical, and chemical properties,...
Components smaller than the wavelength of electromagnetic waves are called meta-atoms. Thermal emiss...
We demonstrate a dynamic surface plasmonic modulation based on graphene-nanowire (grapheme-NW) hybri...
Near-field radiative heat transfer (NFRHT) in many-body systems has opened pathways for enabling nov...
The present work focuses on theoretically research on the spontaneous emission and the energy transf...
Research in nanophotonic materials and design is yielding advances that are opening conceptually new...
Radiative heat transfer is the mechanism by which objects, in absence of conduction and convection, ...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
Graphene plasmons are able to become the fundermental of novel conceptual photonic devices, resultin...
We report the temperature dependent photoluminescence (PL) properties of monolayer graphene-Au-nanop...
We demonstrate a dynamic surface plasmonic modulation based on graphene-nanowire hybrid structures a...
We present a thermal device based on the near-field interaction between two substrates made of a pol...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2015.Cataloged from PD...
<p>As one emerging plasmonic material, graphene can support surface plasmons at infrared and teraher...
All substances above zero kelvin temperature emit fluctuating electromagnetic waves due to the rando...
ABSTRACT: Semiconductor nanowires, due to their unique electronic, optical, and chemical properties,...