Topological Effects on the Magnetoconductivity in Topological Insulators
arXiv:1409.7768 · doi:10.1103/PhysRevB.90.235148
Abstract
Three-dimensional strong topological insulators (TIs) guarantee the existence of a 2-D conducting surface state which completely covers the surface of the TI. The TI surface state necessarily wraps around the TI's top, bottom, and two sidewalls, and is therefore topologically distinct from ordinary 2-D electron gases (2DEGs) which are planar. This has several consequences for the magnetoconductivity , a frequently studied measure of weak antilocalization which is sensitive to the quantum coherence time and to temperature. We show that conduction on the TI sidewalls systematically reduces , multiplying it by a factor which is always less than one and decreases in thicker samples. In addition, we present both an analytical formula and numerical results for the tilted-field magnetoconductivity which has been measured in several experiments. Lastly, we predict that as the temperature is reduced will enter a wrapped regime where it is sensitive to diffusion processes which make one or more circuits around the TI. In this wrapped regime the magnetoconductivity's dependence on temperature, typically in 2DEGs, disappears. We present numerical and analytical predictions for the wrapped regime at both small and large field strengths. The wrapped regime and topological signatures discussed here should be visible in the same samples and at the same temperatures where the Altshuler-Aronov-Spivak (AAS) effect has already been observed, when the measurements are repeated with the magnetic field pointed perpendicularly to the TI's top face.
References in corpus (10)
- Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets
- Weak localisation magnetoresistance and valley symmetry in graphene
- Gate-Voltage Control of Chemical Potential and Weak Anti-localization in Bismuth Selenide
- Impurity effect on weak anti-localization in the topological insulator Bi2Te3
- Topological delocalization of two-dimensional massless Dirac fermions
- Tunable Surface Conductivity in Bi2Se3 Revealed in Diffusive Electron Transport
- Quantum interference and Aharonov-Bohm oscillations in topological insulators
- Weak Localization and Antilocalization in Topological Insulator Thin Films with Coherent Bulk-Surface Coupling
- Quantum criticality and minimal conductivity in graphene with long-range disorder
- Spin-helical transport in normal and superconducting topological insulators