Thermal infrared emission reveals the Dirac point movement in biased graphene
arXiv:1004.0369 · doi:10.1038/nnano.2010.90
Abstract
Graphene is a 2-dimensional material with high carrier mobility and thermal conductivity, suitable for high-speed electronics. Conduction and valence bands touch at the Dirac point. The absorptivity of single-layer graphene is 2.3%, nearly independent of wavelength. Here we investigate the thermal radiation from biased graphene transistors. We find that the emission spectrum of single-layer graphene follows that of a grey body with constant emissivity (1.6 \pm 0.8)%. Most importantly, we can extract the temperature distribution in the ambipolar graphene channel, as confirmed by Stokes/anti-Stokes measurements. The biased graphene exhibits a temperature maximum whose location can be controlled by the gate voltage. We show that this peak in temperature reveals the spatial location of the minimum in carrier density, i.e. the Dirac point.
Accepted in principle at Nature Nanotechnology
References in corpus (8)
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Ultrahigh electron mobility in suspended graphene
- Suspended Graphene: a bridge to the Dirac point
- Intrinsic and Extrinsic Performance Limits of Graphene Devices on SiO2
- Making graphene visible
- Measurement of the Optical Conductivity of Graphene
- Substrate limited electron dynamics in graphene
- Electron Transport and Hot Phonons in Carbon Nanotubes
Cited by in corpus (24)
- Bright visible light emission from graphene
- Electronic modulation of infrared emissivity in graphene plasmonic resonators
- Hot carriers in graphene -- fundamentals and applications
- Role of Joule Heating on Current Saturation and Transient Behavior of Graphene Transistors
- Controlling thermal emission with metasurfaces and its applications
- Thermal light emission from monolayer MoS2
- Graphene hot-electron light bulb: incandescence from hBN-encapsulated graphene in air
- Current-induced forces and hot-spots in biased nano-junctions
- Dynamic modulation of thermal emission -- a Tutorial
- Picosecond energy transfer in a transition metal dichalcogenide-graphene heterostructure revealed by transient Raman spectroscopy
- Enhanced Conductance Fluctuation by Quantum Confinement Effect in Graphene Nanoribbons
- Light emission, light detection and strain sensing with nanocrystalline graphene
- Controllable thermal radiation from twisted bilayer graphen
- Graphene thermal infrared emitters integrated into silicon photonic waveguides
- Modulation characteristics of uncooled graphene photodetectors
- Electrically Programmable Pixelated Graphene-Integrated Plasmonic Metasurfaces for Coherent Mid-Infrared Emission
- Microscopic theory of photon-induced energy, momentum, and angular momentum transport in the nonequilibrium regime
- Resonant plasmonic terahertz detection in gated graphene p-i-n field-effect structures enabled by the Zener-Klein tunneling nonlinearity
- Effects of Dissipation on Solitons in the Hydrodynamic Regime of Graphene
- Heat capacity of nonequilibrium electron-hole plasma in graphene layers and graphene~bilayers
- Spectral and polarization dependencies of luminescence by hot carriers in graphene
- Theoretical analysis of injection driven thermal light emitters based on graphene encapsulated by hexagonal boron nitride
- Non-equilibrium Green's function formalism for radiative heat transfer
- Designing a Concentrated High-Efficiency Thermionic Solar Cell Enabled by Graphene Collector