Modeling vacancies and hydrogen impurities in graphene: A molecular point of view
arXiv:0808.0644 · doi:10.1016/j.physleta.2008.08.014
Abstract
We have followed a "molecular" approach to study impurity effects in graphene. This is thought as the limiting case of an infinitely large cluster of benzene rings. Therefore, we study several carbon clusters, with increasing size, from phenalene, including three benzene rings, up to coronene 61, with 61 benzene rings. The impurities considered were a chemisorbed H atom, a vacancy, and a substitutional proton. We performed HF and UHF calculations using the STO-3G basis set. With increasing cluster size in the absence of impurities, we find a decreasing energy gap, here defined as the HOMO-LUMO difference. In the case of H chemisorption or a vacancy, the gap does not decrease appreciably, whereas it is substantially reduced in the case of a substitutional proton. The presence of an impurity invariably induces an increase of the density of states near the HOMO level. We find a zero mode only in the case of a substitutional proton. In agreement with experiments, we find that both the chemisorbed H, the substitutional proton, and the C atom near a vacancy acquire a magnetic moment. The relevance of graphene clusters for the design of novel electronic devices is also discussed.
to appear in Phys. Lett. A
References in corpus (16)
- Electric Field Effect in Atomically Thin Carbon Films
- Chaotic Dirac billiard in graphene quantum dots
- Adsorption of H2O, NH3, CO, NO2, and NO on graphene: A first-principles study
- Magnetism in Graphene Induced by Single-Atom Defects
- Hydrogen on graphene: Electronic structure, total energy, structural distortions, and magnetism from first-principles calculations
- Induced Magnetic Ordering by Proton Irradiation in Graphite
- Disorder Induced Localized States in Graphene
- High-Resolution Scanning Tunneling Microscopy Imaging of Mesoscopic Graphene Sheets on an Insulating Surface
- On the roughness of single- and bi-layer graphene membranes
- Modeling disorder in graphene
- Friedel oscillations, impurity scattering and temperature dependence of resistivity in graphene
- Electron states of mono- and bilayer graphene on SiC probed by STM
- Effect of a single impurity on the local density of states in monolayer and bilayer graphene
- Paramagnetic adsorbates on graphene: a charge transfer analysis
- Electron waves in chemically substituted graphene
- Monovacancy-induced magnetism in graphene bilayers