Theory of Scanning Tunneling Spectroscopy of Magnetic Adatoms in Graphene
arXiv:0906.2779 · doi:10.1103/PhysRevLett.103.206804
Abstract
We examine theoretically the signatures of magnetic adatoms in graphene probed by scanning tunneling spectroscopy (STS). When the adatom hybridizes equally with the two graphene sublattices, the broadening of the local adatom level is anomalous and can scale with the cube of the energy. In contrast to ordinary metal surfaces, the adatom local moment can be suppressed by the proximity of the probing scanning tip. We propose that the dependence of the tunneling conductance on the distance between the tip and the adatom can provide a clear signature for the presence of local magnetic moments. We also show that tunneling conductance can distinguish whether the adatom is located on top of a carbon atom or in the center of a honeycomb hexagon.
4.1 pages, 4 figures
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- Dual-probe spectroscopic fingerprints of defects in graphene
- Catching the Bound States in the Continuum of a Phantom Atom in Graphene
- Tunable charge donation and spin polarization of metal adsorbates on graphene using applied electric field
- Localized states due to expulsion of resonant impurity levels from the continuum in bilayer graphene
- Effect of an external electric field on local magnetic moments in silicene
- Effect of Inter-Adatoms Correlations on the Local Density of States of Graphene
- Magnetic correlation effects by the topological zero mode in a hydrogenated graphene vacancy
- Selective Kondo screening and strange metallicity by sliding Dirac semimetals