Robust zero bias transport anomalies in semiconducting nanowires with proximity-induced superconductivity have been convincingly demonstrated in various experiments. While these are compatible with the existence of Majorana zero modes at the ends of the nanowire, a direct proof of their non-locality and topological protection is now needed. Here we show that a quantum dot at the end of the nanowire may be used as a powerful spectroscopic tool to quantify the degree of Majorana non-locality through a local transport measurement. Moreover, the spin polarization of dot sub-gap states at singlet-doublet transitions in the Coulomb blockade regime allows the dot to directly probe the spin structure of the Majorana wave function, and indirectly measure the spin-orbit coupling of the nanowire.
@article{arxiv.1702.02525,
title = {Measuring Majorana non-locality and spin structure with a quantum dot},
author = {Elsa Prada and Ramón Aguado and Pablo San-Jose},
journal= {arXiv preprint arXiv:1702.02525},
year = {2017}
}
Comments
11 pages, 7 figures. Published version (includes an extended study of the effects of disorder and nanowire inhomogeneities)