Bound states and controllable currents on Topological Insulator surfaces with extended magnetic defects
arXiv:2212.04052 · doi:10.1103/PhysRevB.107.144205
Abstract
We show that a magnetic line defect on the surface of a topological insulator generically supports two distinct branches of spin-polarized and current carrying one-dimensional bound states. We identify the components of magnetic scattering that lead to the bound states. The velocity, and hence spin texture, of each of those branches can be independently tuned by a magnetic field rotated in the plane of the surface. We compute the local net and spin-resolved density of states as well as spin accumulation and charge currents. The net spin polarization and current due to both bound and scattering states vary stepwise as a function of the electrostatic and magnetic components of the scattering potential, and can be tuned by an applied field. We discuss stability of the bound states with respect to impurity scattering.
References in corpus (8)
- Boundary problems for Dirac electrons and edge-assisted Raman scattering in graphene
- Stationary phase approximation approach to the quasiparticle interference on the surface of a strong topological insulator
- Disorder enabled band structure engineering of a topological insulator surface
- Boundary Conditions and Surface States Spectra in Topological Insulators
- Surface states scattering from a step defect in topological insulator Bi_{2}Te_{3}
- Engineered Near-Perfect Back-Scattering on Surface of Topological Insulator with Non-Magnetic Impurities
- Electronic states induced by nonmagnetic defects in two-dimensional topological insulators
- Andreev spectroscopy of nonhelical spin textures in topological insulators