Two-dimensional electron gases (2DEGs) coupled to superconductors offer the opportunity to explore a variety of quantum phenomena. These include the study of novel Josephson effects, superconducting correlations in quantum (spin) Hall systems, hybrid superconducting qubits and emergent topological states in semiconductors with spin-orbit interaction (SOI). InSb is a well-known example of such a strong SOI semiconductor, however hybrid superconducting devices in InSb quantum wells remain unexplored. Here, we interface InSb 2DEGs with a superconductor (NbTiN) to create Josephson junctions (JJs), thus providing the first evidence of induced superconductivity in high quality InSb quantum wells. The JJs support supercurrent transport over several microns and display clear signatures of ballistic superconductivity. Furthermore, we exploit the large Land\'{e} g-factor and gate tunability of the junctions to control the current-phase relation, and drive transitions between the 0 and π-states. This control over the free energy landscape allows us to construct a phase diagram identifying these 0 and π-regions, in agreement with theory. Our results establish InSb quantum wells as a promising new material platform to study the interplay between superconductivity, SOI and magnetism.
@article{arxiv.1902.10742,
title = {Ballistic superconductivity and tunable $\pi$-junctions in InSb quantum wells},
author = {Chung Ting Ke and Christian M. Moehle and Folkert K. de Vries and Candice Thomas and Sara Metti and Charles R. Guinn and Ray Kallaher and Mario Lodari and Giordano Scappucci and Tiantian Wang and Rosa E. Diaz and Geoffrey C. Gardner and Michael J. Manfra and Srijit Goswami},
journal= {arXiv preprint arXiv:1902.10742},
year = {2019}
}
Comments
Includes supplementary information. Data files available at: https://doi.org/10.4121/uuid:5fab8273-8794-4cd7-96d4-ba8ec00a62cf