The capability to switch electrically between superconducting and insulating states of matter represents a novel paradigm in the state-of-the-art engineering of correlated electronic systems. An exciting possibility is to turn on superconductivity in a topologically non-trivial insulator, which provides a route to search for non-Abelian topological states. However, existing demonstrations of superconductor-insulator switches have involved only topologically trivial systems, and even those are rare due to the stringent requirement to tune the carrier density over a wide range. Here we report reversible, in-situ electrostatic on off switching of superconductivity in a recently established quantum spin Hall insulator, namely monolayer tungsten ditelluride (WTe2). Fabricated into a van der Waals field effect transistor, the monolayer's ground state can be continuously gate-tuned from the topological insulating to the superconducting state, with critical temperatures Tc up to ~ 1 Kelvin. The critical density for the onset of superconductivity is estimated to be ~ 5 x 10^12 cm^-2, among the lowest for two-dimensional (2D) superconductors. Our results establish monolayer WTe2 as a material platform for engineering novel superconducting nanodevices and topological phases of matter.
@article{arxiv.1809.04637,
title = {Electrically Tunable Low Density Superconductivity in a Monolayer Topological Insulator},
author = {Valla Fatemi and Sanfeng Wu and Yuan Cao and Landry Bretheau and Quinn D. Gibson and Kenji Watanabe and Takashi Taniguchi and Robert J. Cava and Pablo Jarillo-Herrero},
journal= {arXiv preprint arXiv:1809.04637},
year = {2018}
}
Comments
25 pages, including main text, figures and supplements