Spintronic properties of one-dimensional electron gas in graphene armchair ribbons
arXiv:1204.0306 · doi:10.1016/j.ssc.2012.07.026
Abstract
We have investigated, using effective mass approach (EMA), magnetic properties of a one-dimensional electron gas in graphene armchair ribbons when the electrons of occupy only the lowest conduction subband. We find that magnetic properties of the one-dimensional electron gas may depend sensitively on the width of the ribbon. For ribbon widths , a critical point separates ferromagnetic and paramagnetic states while for paramagnetic state is stable ( is an integer and is the length of the unit cell). These width-dependent properties are a consequence of eigenstates that have a subtle width-dependent mixture of and states, and can be understood by examining the wavefunction overlap that appears in the expression for the many-body exchange self-energy. Ferromagnetic and paramagnetic states may be used for spintronic purposes.
5 pages, 6 figures
References in corpus (8)
- The electronic properties of graphene
- Energy Gaps in Graphene Nanoribbons
- Electronic States of Graphene Nanoribbons
- Ferromagnetism in armchair graphene nanoribbon
- Dirac equation description on the electronic states and magnetic properties of a square graphene quantum dot
- Electronic properties of a graphene antidot in magnetic fields
- Scaling properties of induced density of chiral and non-chiral Dirac fermions in magnetic fields
- Comment on "Fock-Darwin States of Dirac Electrons in Graphene-Based Artificial Atoms"
Cited by in corpus (7)
- Soliton fractional charges in graphene nanoribbon and polyacetylene: similarities and differences
- Indirect RKKY interaction in armchair graphene nanoribbons
- Topological gap states of semiconducting armchair graphene ribbons
- Topological end states and Zak phase of rectangular armchair ribbon
- Resonant, non-resonant, and anomalous states of Dirac electrons in a parabolic well in the presence of magnetic fields
- Impurity cyclotron resonance of anomalous Dirac electrons in graphene
- Gap states and edge properties of rectangular graphene quantum dot in staggered potential