Terahertz Dynamics of Quantum-Confined Electrons in Carbon Nanomaterials
arXiv:1205.6171 · doi:10.1007/s10762-012-9916-8
Abstract
Low-dimensional carbon nanostructures, such as single-wall carbon nanotubes (SWCNTs) and graphene, offer new opportunities for terahertz science and technology. Being zero-gap systems with a linear, photon-like energy dispersion, metallic SWCNTs and graphene exhibit a variety of extraordinary properties. Their DC and linear electrical properties have been extensively studied in the last decade, but their unusual finite-frequency, nonlinear, and/or non-equilibrium properties are largely unexplored, although they are predicted to be useful for new terahertz device applications. Terahertz dynamic conductivity measurements allow us to probe the dynamics of such photon-like electrons, or massless Dirac fermions. Here, we use terahertz time-domain spectroscopy and Fourier transform infrared spectroscopy to investigate terahertz conductivities of one-dimensional and two-dimensional electrons, respectively, in films of highly aligned SWCNTs and gated large-area graphene. In SWCNTs, we observe extremely anisotropic terahertz conductivities, promising for terahertz polarizer applications. In graphene, we demonstrate that terahertz and infrared properties sensitively change with the Fermi energy, which can be controlled by electrical gating and thermal annealing.
16 pages, 9 figures
References in corpus (34)
- Electric Field Effect in Atomically Thin Carbon Films
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Measurement of the Optical Conductivity of Graphene
- Electric Field Effect Tuning of Electron-Phonon Coupling in Graphene
- Optical far-infrared properties of graphene monolayer and multilayers
- A new electromagnetic mode in graphene
- Space-time dispersion of graphene conductivity
- Approaching the Dirac point in high mobility multi-layer epitaxial graphene
- Giant Faraday rotation in single- and multilayer graphene
- Landau level spectroscopy of ultrathin graphite layers
- Infrared spectroscopy of Landau levels in graphene
- Unusual Microwave Response of Dirac Quasiparticles in Graphene
- Nonlinear electromagnetic response of graphene: Frequency multiplication and the self-consistent-field effects
- Non-linear electromagnetic response of graphene
- Optical and magneto-optical far-infrared properties of bilayer graphene
- Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
- Terahertz and Infrared Spectroscopy of Gated Large-Area Graphene
- How perfect can graphene be?
- Magneto-optical properties of multilayer graphenes
- Coulomb interaction, ripples, and the minimal conductivity of graphene
- Sum Rules for the Optical and Hall Conductivity in Graphene
- Anomalous Absorption Line in the Magneto-Optical Response of Graphene
- Cyclotron resonance in bilayer graphene
- Dynamic response of one-dimensional interacting fermions
- Effect of electron-electron interactions on the conductivity of clean graphene
- Minimal conductivity in graphene: interaction corrections and ultraviolet anomaly
- Landauer conductance and twisted boundary conditions for Dirac fermions in two space dimensions
- Quasi-classical cyclotron resonance of Dirac fermions in highly doped graphene
- Dynamics of the particle - hole pair creation in graphene
- Conductivity of interacting massless Dirac particles in graphene: Collisionless regime
- Graphene Tunneling Transit-Time Terahertz Oscillator Based on Electrically Induced p-i-n Junction
- Non-linear effects in the cyclotron resonance of a massless quasi-particle in graphene
- Magneto-spectroscopy of Highly-Aligned Carbon Nanotubes: Identifying the Role of Threading Magnetic Flux
- Terahertz emitters and detectors based on carbon nanotubes
Cited by in corpus (4)
- Collective Antenna Effects in the Terahertz and Infrared Response of Highly Aligned Carbon Nanotube Arrays
- Graphene Terahertz Devices for Sensing and Communication
- Exact solution for square-wave grating covered with graphene: Surface plasmon-polaritons in the THz range
- Giant Terahertz Polarization Rotation in Ultrathin Films of Aligned Carbon Nanotubes