Charge doping induced phase transitions in hydrogenated and fluorinated graphene
arXiv:1312.2276 · doi:10.1103/PhysRevB.90.085422
Abstract
We show that charge doping can induce transitions between three distinct adsorbate phases in hydrogenated and fluorinated graphene. By combining ab initio, approximate density functional theory and tight binding calculations we identify a transition from islands of CH and CF to random adsorbate distributions around a doping level of e/C-atom. Furthermore, in situations with random adsorbate coverage, charge doping is shown to trigger an ordering transition where the sublattice symmetry is spontaneously broken when the doping level exceeds the adsorbate concentration. Rehybridization and lattice distortion energies make graphene which is covalently functionalized from one side only most susceptible to these two kinds of phase transitions. The energy gains associated with the clustering and ordering transitions exceed room temperature thermal energies.
17 pages, 7 figures
References in corpus (8)
- Control of graphene's properties by reversible hydrogenation
- Fluorographene: Two Dimensional Counterpart of Teflon
- Hydrogen on graphene: Electronic structure, total energy, structural distortions, and magnetism from first-principles calculations
- Resonant scattering by realistic impurities in graphene
- Long-Range Interaction Between Adatoms in Graphene
- Peierls-type Instability and Tunable Band Gap in Functionalized Graphene
- Sublattice ordering in a dilute ensemble of defects in graphene
- Color-dependent conductance of graphene with adatoms