Nonequilibrium carriers in an intrinsic graphene under interband photoexcitation
arXiv:0807.1590 · doi:10.1103/PhysRevB.78.115431
Abstract
We study nonequilibrium carriers (electrons and holes) in an intrinsic graphene at low temperatures under far- and mid-infrared (IR) radiation in a wide range of its intensities. The energy distributions of carriers are calculated using a quasiclassic kinetic equation which accounts for the energy relaxation due to acoustic phonons and the radiative generation-recombination processes associated with thermal radiation and the carrier photoexcitation by incident radiation. It is found that the nonequilibrium distributions are determined by an interplay between weak energy relaxation on acoustic phonons and generation-recombination processes as well as by the effect of pumping saturation. Due to the effect of saturation, the carrier distribution functions can exhibit plateaus around the pumping region at elevated intensities. As shown, at sufficiently strong mid-IR pumping, the population inversion can occur below the pumping energy. The graphene dc conductivity as a function of the pumping intensity exhibits a pronounced nonlinearity with a sub-linear region at fairly low intensities and a saturation at a strong pumping. However, an increase in the pumping intensity in very wide range leads only to a modest increase in the carrier concentration and, particularly, the dc conductivity. The graphene conductivity at mid-IR irradiation exhibit strong sensitivity to mechanisms of carrier momentum relaxation.
8 pages, 6 figures
References in corpus (12)
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Ultrathin epitaxial graphite: 2D electron gas properties and a route toward graphene-based nanoelectronics
- Universal dynamical conductance in graphite
- The optical conductivity of graphene in the visible region of the spectrum
- Space-time dispersion of graphene conductivity
- Infrared spectroscopy of Landau levels in graphene
- Graphene Terahertz Plasmon Oscillators
- AC conductivity of graphene: from tight-binding model to 2+1-dimensional quantum electrodynamics
- Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
- Voltage and temperature dependencies of conductivity in gated graphene
- High-Energy Limit of Massless Dirac Fermions in Multilayer Graphene using Magneto-Optical Transmission Spectroscopy
- Device Model for Graphene Nanoribbon Phototransistor
Cited by in corpus (23)
- Plasmons in graphene: Recent progress and applications
- Terahertz and Infrared Spectroscopy of Gated Large-Area Graphene
- Terahertz Science and Technology of Carbon Nanomaterials
- Slow imbalance relaxation and thermoelectric transport in graphene
- Optical response of graphene under intense terahertz fields
- Toward the creation of terahertz graphene injection laser
- Terahertz lasers based on optically pumped multiple graphene structures with slot-line and dielectric waveguides
- Feasibility of terahertz lasing in optically pumped epitaxial multiple graphene layer structures
- Terahertz and Infrared Photodetection using p-i-n Multiple-Graphene-Layer Structures
- Microscopic mechanism for transient population inversion and optical gain in graphene
- Saturation of interband absorption in graphene
- Effect of plasma resonances on dynamic characteristics of double graphene-layer optical modulator
- Graphene terahertz uncooled bolometers
- Irradiated bilayer graphene
- Effect of heating and cooling of photogenerated electron-hole plasma in optically pumped graphene on population inversion
- Photo-induced valley currents in strained graphene
- Modulation characteristics of uncooled graphene photodetectors
- Transient response under ultrafast interband excitation of an intrinsic graphene
- Negative dynamic Drude conductivity in pumped graphene
- Hot carriers in a bipolar graphene
- Tunneling Recombination in Optically Pumped Graphene with Electron-Hole Puddles
- Surface plasmon-polaritons in graphene, embedded into medium with gain and losses
- Enhanced ponderomotive force in graphene due to interband resonance