Topological effect on spin transport in a magnetic quantum wire: Green's function approach
arXiv:1002.2345 · doi:10.1166/jctn.2011.1686
Abstract
We explore spin dependent transport through a magnetic quantum wire which is attached to two non-magnetic metallic electrodes. We adopt a simple tight-binding Hamiltonian to describe the model where the quantum wire is attached to two semi-infinite one-dimensional non-magnetic electrodes. Based on single particle Green's function formalism all the calculations are performed numerically which describe two-terminal conductance and current-voltage characteristics through the wire. Quite interestingly we see that, beyond a critical system size probability of spin flipping enhances significantly that can be used to design a spin flip device. Our numerical study may be helpful in fabricating mesoscopic or nano-scale spin devices.
8 pages, 9 figures
Cited by in corpus (4)
- Curvature effect on spin polarization in a three-terminal geometry in presence of Rashba spin-orbit interaction
- Spin filter for arbitrary spins by substrate engineering
- Selective spin transport through a quantum heterostructure: Transfer matrix method
- Externally controlled selective spin transfer through a two-terminal bridge setup