Article ID Journal Published Year Pages File Type
1546334 Physica E: Low-dimensional Systems and Nanostructures 2011 4 Pages PDF
Abstract

We study the spin dependent transport through a quantum dot connected to ferromagnetic leads. Using the non-equilibrium generalization of the non-crossing approximation for finite Coulomb repulsion U, we compute the spin polarized conductance, the local average occupancies and the local densities of states in the Kondo regime. We show that transport properties are strongly affected if we allow double occupancy by using a finite value for U. In the framework of our model, we have successfully reproduced the recent experimental finding of an electrically controlled magnetic moment on a carbon nanotube quantum dot coupled to ferromagnetic nickel leads [3]. Besides, in addition to the well known splitting of the Kondo peak in the density of states due to the presence of ferromagnetic leads, we find that the additional splitting due to non-zero bias voltage leads to an unexpected increase of the total conductance, which has also been observed by Hauptmann et al.

► Spin dependent transport through a quantum dot connected to ferromagnetic leads. ► Finite U non-crossing approximation out of equilibrium. ► Purely electric control of the local magnetic moment. ► Increase of the total conductance with applied bias voltage. ► Comprehensive spin specific mechanism explaining these two experimental observations.

Related Topics
Physical Sciences and Engineering Materials Science Electronic, Optical and Magnetic Materials
Authors
, , ,