Electronic structure and magnetism of samarium and neodymium adatoms on free-standing graphene
arXiv:1609.02725 · doi:10.1103/PhysRevB.94.125113
Abstract
The electronic structure of selected rare-earth atoms adsorbed on a free-standing graphene was investigated using methods beyond the conventional density functional theory (DFT+U, DFT+HIA and DFT+ED). The influence of the electron correlations and the spin-orbit coupling on the magnetic properties has been examined. The DFT+U method predicts both atoms to carry local magnetic moments (spin and orbital) contrary to a nonmagnetic () ground-state configuration of Sm in the gas phase. Application of DFTHubbard-I (HIA) and DFTexact diagonalization (ED) methods cures this problem, and yields a nonmagnetic ground state with six electrons and for the Sm adatom. Our calculations show that Nd adatom remains magnetic, with four localized electrons and . These conclusions could be verified by STM and XAS experiments.
REVTeX 4-1, 8 pages, 4 figures
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Cited by in corpus (4)
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- Investigation of magnetic properties of -adatoms on graphene
- Chiral symmetry and magnetism in a 3D Kagome lattice: RPtB (R = La and Nd) prototype crystals
- Modulation of crystal and electronic structures in topological insulators by rare-earth doping