Giant Phonon-induced Conductance in Scanning Tunneling Spectroscopy of Gate-tunable Graphene
arXiv:0802.4315 · doi:10.1038/nphys1022
Abstract
The honeycomb lattice of graphene is a unique two-dimensional (2D) system where the quantum mechanics of electrons is equivalent to that of relativistic Dirac fermions. Novel nanometer-scale behavior in this material, including electronic scattering, spin-based phenomena, and collective excitations, is predicted to be sensitive to charge carrier density. In order to probe local, carrier-density dependent properties in graphene we have performed atomically-resolved scanning tunneling spectroscopy measurements on mechanically cleaved graphene flake devices equipped with tunable back-gate electrodes. We observe an unexpected gap-like feature in the graphene tunneling spectrum which remains pinned to the Fermi level (E_F) regardless of graphene electron density. This gap is found to arise from a suppression of electronic tunneling to graphene states near E_F and a simultaneous giant enhancement of electronic tunneling at higher energies due to a phonon-mediated inelastic channel. Phonons thus act as a "floodgate" that controls the flow of tunneling electrons in graphene. This work reveals important new tunneling processes in gate-tunable graphitic layers.
References in corpus (8)
- Two Dimensional Atomic Crystals
- The structure of suspended graphene sheets
- Substrate-induced band gap opening in epitaxial graphene
- Atomic Structure of Graphene on SiO2
- Infrared spectroscopy of Landau levels in graphene
- Electron states of mono- and bilayer graphene on SiC probed by STM
- Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
- Phonon mediated tunneling into graphene
Cited by in corpus (9)
- Scanning Tunneling Spectroscopy of Graphene on Graphite
- Spatially resolved spectroscopy of monolayer graphene on SiO2
- Evidence for Strain-Induced Local Conductance Modulations in Single-Layer Graphene on SiO2
- Phonon mediated tunneling into graphene
- Kohn anomaly and interplay of electron-electron and electron-phonon interactions in epitaxial graphene
- Spectroscopic Imaging Scanning Tunneling Microscopy as a Probe of Orbital Structures and Ordering
- Local density of states and scanning tunneling currents in graphene
- Scanning Tunneling Microscopy currents on locally disordered graphene
- Local density of states in disordered graphene