Influence of Helical Spin Structure on the Magnetoresistance of an Ideal Topological Insulator
arXiv:1412.1007 · doi:10.1088/2399-6528/aa8cfb
Abstract
In an ideal topological insulator, the helical spin structure of surface electrons suppresses backscattering and thus can enhance surface conductivity. We investigate the effect of perpendicular magnetic field on the spin structure of electrons at the Fermi energy and calculate a magnetic-field dependent topological enhancement factor for different disorder potentials, ranging from short-range disorder to screened Coulomb potential. Within the Boltzmann approximation, the topological enhancement factor reaches its maximum value of 4 for a short-range disorder at zero magnetic field and approaches a value of 1 at high magnetic fields independent of the nature of the disorder potential.
Corrected a typo in one of the author names
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Cited by in corpus (4)
- Ultrafast Terahertz Conductivity Probes of Topologically Enhanced Surface Transport Driven by Mid-Infrared Laser Pulses in BiSe
- Theory of bi-linear magnetoresistance within the minimal model for surface states in topological insulators
- Definitive Surface Magnetotransport Study of SmB
- Unidirectional magneto-transport of linearly dispersing topological edge states