Gray tin, also known as α-Sn, can be turned into a three-dimensional topological insulator (3D-TI) by strain and finite size effects. Such room temperature 3D-TI is peculiarly interesting for spintronics due to the spin-momentum locking along the Dirac cone (linear dispersion) of the surface states. Angle resolved photoemission spectroscopy (ARPES) has been used to investigate the dispersion close to the Fermi level in thin (0\,0\,1)-oriented epitaxially strained films of α-Sn, for different film thicknesses as well as for different capping layers (Al, AlOx and MgO). Indeed a proper capping layer is necessary to be able to use α-Sn surface states for spintronics applications. In contrast with free surfaces or surfaces coated with Ag, coating the α-Sn surface with Al or AlOx leads to a drop of the Fermi level below the Dirac point, an important consequence for transport is the presence of bulk states at the Fermi level. α-Sn films coated by AlOx are studied by electrical magnetotransport: despite clear evidence of surface states revealed by Shubnikov-de Haas oscillations, an important part of the magneto-transport properties is governed by "bulk" electronic states attributed to the Γ8 band, as suggested by {\it ab-initio} calculations.
@article{arxiv.1807.11377,
title = {ARPES and transport studies of the elemental topological insulator $\alpha$-Sn},
author = {Quentin Barbedienne and Julien Varignon and Nicolas Reyren and Alain Marty and Celine Vergnaud and Matthieu Jamet and Carmen Gomez-Carbonell and Aristide Lemaître and Patrick Le Fèvre and François Bertran and Amina Taleb-Ibrahimi and Henri Jaffrès and Jean-Marie George and Albert Fert},
journal= {arXiv preprint arXiv:1807.11377},
year = {2018}
}