Absence of Perfect Conductance Quantization of Helical-edge Transport in Graphene under a Strong, Tilted Magnetic Field
arXiv:1508.00220 · doi:10.1103/PhysRevB.92.155124
Abstract
In a recent experiment, Young et al. [Nature {\bf 505}, 528 (2014)] observed a metal to insulator transition as well as transport through helical edge states in monolayer graphene under a strong, tilted magnetic field. Under such conditions, the bulk is a magnetic insulator which can exhibit metallic conduction through helical edges. It was found that two-terminal conductance of the helical channels deviates from the expected quantized value at low-temperatures ( per edge, at zero temperature). Motivated by this observation, we study the effect of disorder on the conduction through the edge channels. We show that, unlike the situation in semiconducting quantum wells, a disorder Rashba spin-orbit coupling does not lead to backscattering, at least to leading order. Instead we find the lack of perfect anti-alignment of the electron spins in the helical channels to be the most likely source for backscattering arising from scalar (i.e. spin-independent) impurities. The intrinsic spin-orbit coupling and other time-reversal symmetry breaking and/or sublattice-parity breaking potentials also lead to (sub-leading) corrections to the channel conductance.
12 pages and 6 pdf figures
References in corpus (17)
- The electronic properties of graphene
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Electronic States of Graphene Nanoribbons
- Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets
- Spin-orbit coupling in curved graphene, fullerenes, nanotubes, and nanotube caps
- Spin-orbit gap of graphene: First-principles calculations
- Quantum Hall Ferromagnetism in Graphene
- Spin Filtered Edge States and Quantum Hall Effect in Graphene
- Edge Dynamics in a Quantum Spin Hall State: Effects from Rashba Spin-Orbit Interaction
- Edge excitations of the canted antiferromagnetic phase of the quantum Hall state in graphene: a simplified analysis
- Chiral Symmetry Breaking and the Quantum Hall Effect in Monolayer Graphene
- Edge states, mass and spin gaps, and quantum Hall effect in graphene
- Edge states on graphene ribbon in magnetic field: interplay between Dirac and ferromagnetic-like gaps
- Noncollinear magnetic phases and edge states in graphene quantum Hall bars
- Collective Edge Modes near the onset of a graphene quantum spin Hall state
- Non-Equilibrium Transport Through a Gate-Controlled Barrier on the Quantum Spin Hall Edge