Emergence of local magnetic moments in doped graphene-related materials
arXiv:0908.4516 · doi:10.1103/PhysRevB.80.241413
Abstract
Motivated by recent studies reporting the formation of localized magnetic moments in doped graphene, we investigate the energetic cost for spin polarizing isolated impurities embedded in this material. When a well-known criterion for the formation of local magnetic moments in metals is applied to graphene we are able to predict the existence of magnetic moments in cases that are in clear contrast to previously reported Density Functional Theory (DFT) results. When generalized to periodically repeated impurities, a geometry so commonly used in most DFT-calculations, this criterion shows that the energy balance involved in such calculations contains unavoidable contributions from the long-ranged pairwise magnetic interactions between all impurities. This proves the fundamental inadequacy of the DFT-assumption of independent unit cells in the case of magnetically doped low-dimensional graphene-based materials. We show that this can be circumvented if more than one impurity per unit cell is considered, in which case the DFT results agree perfectly well with the criterion-based predictions for the onset of localized magnetic moments in graphene. Furthermore, the existence of such a criterion determining whether or not a magnetic moment is likely to arise within graphene will be instrumental for predicting the ideal materials for future carbon-based spintronic applications.
Submitted to PRL
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- Adatoms in graphene as a source of current polarization: Role of the local magnetic moment
- Anisotropic RKKY interaction in spin polarized graphene
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- Magnetization profile for impurities in graphene nanoribbons
- Competing magnetism in electrons in graphene with a single carbon vacancy
- Graphene-based spin-pumping transistor
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- Theory of Vacancy-Induced Intrinsic Magnetic Impurity with Quasi-Localized Spin Moment in Graphene
- Magnetic exchange mechanism for electronic gap opening in graphene
- Graphene as a non-magnetic spin-current lens
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- Variable range of the RKKY interaction in edged graphene
- Proximity spin-orbit coupling in graphene on alloyed transition metal dichalcogenides
- Electric field control of spins in bilayer graphene: Local moment formation and local moment interactions