Spin-dependent transport through interacting graphene armchair nanoribbons
Abstract
We investigate spin effects in transport across fully interacting, finite size graphene armchair nanoribbons (ACNs) contacted to collinearly spin-polarized leads. In such systems, the presence of short ranged Coulomb interaction between bulk states and states localized at the ribbon ends leads to novel spin-dependent phenomena. Specifically, the total spin of the low energy many-body states is conserved during tunneling but that of the bulk and end states is not. As a consequence, in the single-electron regime, dominated by Coulomb blockade phenomena, we find pronounced negative differential conductance features for ACNs contacted to parallel polarized leads. These features are however absent for an anti-parallel contact configuration, which in turn leads within a certain gate and bias voltage region to a negative tunneling magneto-resistance. Moreover, we analyze the changes in the transport characteristics under the influence of an external magnetic field.
Keywords
Cite
@article{arxiv.0910.5265,
title = {Spin-dependent transport through interacting graphene armchair nanoribbons},
author = {Sonja Koller and Leonhard Mayrhofer and Milena Grifoni},
journal= {arXiv preprint arXiv:0910.5265},
year = {2010}
}
Comments
37 pages, 9 figures, 2 tables; revised published version