All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motion of particles and quasiparticles. Dynamic control of this radiation could enable the design of novel infrared sources; however, the spectral characteristics of the radiated power are dictated by the electromagnetic energy density and emissivity, which are ordinarily fixed properties of the material and temperature. Here we experimentally demonstrate tunable electronic control of blackbody emission from graphene plasmonic resonators on a silicon nitride substrate. It is shown that the graphene resonators produce antenna-coupled blackbody radiation, which manifests as narrow spectral emission peaks in the mid-infrared. By continuously varying ...
Controlling the energy flow processes and the associated energy relaxation rates of a light emitter ...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
Dynamic switching of a plasmonic resonance may find numerous applications in subwavelength optoelect...
All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motio...
As one emerging plasmonic material, graphene can support surface plasmons at infrared and terahertz ...
<p>Thermal radiation from macroscopic objects is limited by the well-known Planck's law. However, wh...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
abstract: In this work, we numerically demonstrate an infrared (IR) frequency-tunable selective ther...
Graphene plasmons are known to offer an unprecedented level of confinement and enhancement of electr...
Mid-Infrared thermal emission sources based on graphene were investigated both experimentally and si...
It is shown that thermally excited plasmon- polariton modes can strongly mediate, enhance, and tune ...
Single-layer graphene has been shown to have intriguing prospects as a plasmonic material, as modes ...
It is shown that a graphene layer on top of a dielectric slab can dramatically influence the ability...
Radiative heat transfer is the mechanism by which objects, in absence of conduction and convection, ...
In nature, adaptive coloration has been effectively utilized for concealment and signaling. Various ...
Controlling the energy flow processes and the associated energy relaxation rates of a light emitter ...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
Dynamic switching of a plasmonic resonance may find numerous applications in subwavelength optoelect...
All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motio...
As one emerging plasmonic material, graphene can support surface plasmons at infrared and terahertz ...
<p>Thermal radiation from macroscopic objects is limited by the well-known Planck's law. However, wh...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
abstract: In this work, we numerically demonstrate an infrared (IR) frequency-tunable selective ther...
Graphene plasmons are known to offer an unprecedented level of confinement and enhancement of electr...
Mid-Infrared thermal emission sources based on graphene were investigated both experimentally and si...
It is shown that thermally excited plasmon- polariton modes can strongly mediate, enhance, and tune ...
Single-layer graphene has been shown to have intriguing prospects as a plasmonic material, as modes ...
It is shown that a graphene layer on top of a dielectric slab can dramatically influence the ability...
Radiative heat transfer is the mechanism by which objects, in absence of conduction and convection, ...
In nature, adaptive coloration has been effectively utilized for concealment and signaling. Various ...
Controlling the energy flow processes and the associated energy relaxation rates of a light emitter ...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
Dynamic switching of a plasmonic resonance may find numerous applications in subwavelength optoelect...