Phase Coherence and Andreev Reflection in Topological Insulator Devices
Abstract
Topological insulators (TIs) have attracted immense interest because they host helical surface states. Protected by time-reversal symmetry, they are robust to non-magnetic disorder. When superconductivity is induced in these helical states, they are predicted to emulate p-wave pairing symmetry, with Majorana states bound to vortices. Majorana bound states possess non-Abelian exchange statistics which can be probed through interferometry. Here, we take a significant step towards Majorana interferometry by observing pronounced Fabry-Perot oscillations in a TI sandwiched between a superconducting and normal lead. For energies below the superconducting gap, we observe a doubling in the frequency of the oscillations, arising from the additional phase accumulated from Andreev reflection. When a magnetic field is applied perpendicular to the TI surface, a number of very sharp and gate-tunable conductance peaks appear at or near zero energy, which has consequences for interpreting spectroscopic probes of Majorana fermions. Our results demonstrate that TIs are a promising platform for exploring phase-coherent transport in a solid-state system.
Cite
@article{arxiv.1403.5588,
title = {Phase Coherence and Andreev Reflection in Topological Insulator Devices},
author = {A. D. K. Finck and C. Kurter and Y. S. Hor and D. J. Van Harlingen},
journal= {arXiv preprint arXiv:1403.5588},
year = {2014}
}
Comments
9 pages, 7 figures