Novel mechanism for weak magnetization with high Curie temperature observed in H-adsorption on graphene
arXiv:1907.10908 · doi:10.1088/1361-648X/ab6e42
Abstract
To elucidate the physics underling magnetism observed in nominally nonmagnetic materials with only -electrons, we built an extreme model to simulate H-adsorption (in a straight-line form) on graphene. Our first principles calculations for the model produce a ferromagnetic ground state with a magnetic moment of one Bohr magneton per H atom and an estimated Curie temperature above 250~K. The removal of the -orbitals from sublattice B of graphene introduces -vacancies. The -vacancy-induced states are not created from changes in interatomic interactions but are created because of a -orbital imbalance between two sublattices (A and B) of a conjugated -orbital network. Therefore, there are critical requirements for the creation of these states (denoted as ) to avoid further imbalances and minimize the effects on the conjugated -orbital network. The requirements on the creation of are as follows: 1) consists of -orbitals of only the atoms in sublattice A, 2) the spatial wavefunction of is antisymmetric, and 3) in principle, extends over the entire crystal without decaying, unless other -vacancies are crossed. Both the origin of spin polarization and the magnetic ordering of the model arise from the aforementioned requirements.
9 pages, 5 figures
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