As one emerging plasmonic material, graphene can support surface plasmons at infrared and terahertz frequencies with unprecedented properties due to the strong interactions between graphene and low-frequency photons. Since graphene surface plasmons exist in the infrared and terahertz regime, they can be thermally pumped (excited) by the infrared evanescent waves emitted from an object. Here we show that thermal graphene plasmons can be efficiently excited and have monochromatic and tunable spectra, thus paving a way to harness thermal energy for graphene plasmonic devices. We further demonstrate that “thermal information communication” via graphene surface plasmons can be potentially realized by effectively harnessing thermal energy from va...
All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motio...
<p>We explore the effects of surface plasmon hybridization in graphene nanostructures and silver nan...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
<p>As one emerging plasmonic material, graphene can support surface plasmons at infrared and teraher...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
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, ...
Plasmonic excitations, consisting of collective oscillations of the electron gas in a conductive fil...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Controlling, detecting and generating propagating plasmons by all-electrical means is at the heart o...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
Thermal radiation from macroscopic objects is limited by the well-known Planck's law. However, when ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2015.Cataloged from PD...
In this chapter, we focus on the development on tunable terahertz/infrared metamaterials enabled wit...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motio...
<p>We explore the effects of surface plasmon hybridization in graphene nanostructures and silver nan...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
<p>As one emerging plasmonic material, graphene can support surface plasmons at infrared and teraher...
We theoretically demonstrate a near-field radiative thermal switch based on thermally excited surfac...
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, ...
Plasmonic excitations, consisting of collective oscillations of the electron gas in a conductive fil...
Plasmon is the quantum of the collective oscillation of electrons. How plasmon loses its energy (or ...
Controlling, detecting and generating propagating plasmons by all-electrical means is at the heart o...
Graphene supports surface plasmons bound to an atomically thin layer of carbon, characterized by tun...
Thermal radiation from macroscopic objects is limited by the well-known Planck's law. However, when ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2015.Cataloged from PD...
In this chapter, we focus on the development on tunable terahertz/infrared metamaterials enabled wit...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
All matter at finite temperatures emits electromagnetic radiation due to the thermally induced motio...
<p>We explore the effects of surface plasmon hybridization in graphene nanostructures and silver nan...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...