Neutral edge modes in a superconductor -- topological-insulator hybrid structure in a perpendicular magnetic field
arXiv:1312.6251 · doi:10.1209/0295-5075/108/17009
Abstract
We study the low-energy edge states of a superconductor -- 3D topological-insulator hybrid structure (NS junction) in the presence of a perpendicular magnetic field. The hybridization of electron-like and hole-like Landau levels due to Andreev reflection gives rise to chiral edge states within each Landau level. We show that by changing the chemical potential of the superconductor, this junction can be placed in a regime where the sign of the effective charge of the edge state within the zeroth Landau level changes more than once resulting in neutral edge modes with a finite value of the guiding-center coordinate. We find that the appearance of these neutral edge modes is related to the level repulsion between the zeroth and the first Landau levels in the spectra. We also find that these neutral edge modes come in pairs, one in the zeroth Landau level and its corresponding pair in the first.
5 pages
References in corpus (10)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- Dissipationless Quantum Spin Current at Room Temperature
- Specular Andreev reflection in graphene
- Spin Filtered Edge States and Quantum Hall Effect in Graphene
- Quantum Hall effect in graphene with superconducting electrodes
- Insulating state and giant non-local response in an InAs/GaSb quantum well in the quantum Hall regime
- Bogoliubov angle and visualization of particle-hole mixture in superconductors
- Absence of Aharonov-Bohm effect of chiral Majorana fermion edge states
- Dipolar bogolons: from superfluids to Pfaffians