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Magnetism-dependent transport phenomena in hydrogenated graphene: from spin-splitting to localization effects.
- Source :
-
ACS nano [ACS Nano] 2011 May 24; Vol. 5 (5), pp. 3987-92. Date of Electronic Publication: 2011 Apr 20. - Publication Year :
- 2011
-
Abstract
- Spin-dependent transport in hydrogenated two-dimensional graphene is explored theoretically. Adsorbed atomic hydrogen impurities can either induce a local antiferromagnetic, ferromagnetic, or nonmagnetic state depending on their density and relative distribution. To describe the various magnetic possibilities of hydrogenated graphene, a self-consistent Hubbard Hamiltonian, optimized by ab initio calculations, is first solved in the mean field approximation for small graphene cells. Then, an efficient order N Kubo transport methodology is implemented, enabling large scale simulations of functionalized graphene. Depending on the underlying intrinsic magnetic ordering of hydrogen-induced spins, remarkably different transport features are predicted for the same impurity concentration. Indeed, while the disordered nonmagnetic graphene system exhibits a transition from diffusive to localization regimes, the intrinsic ferromagnetic state exhibits unprecedented robustness toward quantum interference, maintaining, for certain resonant energies, a quasiballistic regime up to the micrometer scale. Consequently, low temperature transport measurements could unveil the presence of a magnetic state in weakly hydrogenated graphene.
Details
- Language :
- English
- ISSN :
- 1936-086X
- Volume :
- 5
- Issue :
- 5
- Database :
- MEDLINE
- Journal :
- ACS nano
- Publication Type :
- Academic Journal
- Accession number :
- 21469688
- Full Text :
- https://doi.org/10.1021/nn200558d