Scrutinizing a superconductor-topological insulator interface as a platform for topological superconductivity

ORAL

Abstract

Interfacing a topological insulator (TI) with an s-wave superconductor (SC) is a promising material platform that offers the possibility to realize a topological superconductor through which Majorana-based topologically protected qubits can be engineered. In our computational study of the prototypical SC/TI interface between Nb and Bi2Te3, we identify the benefits and possible bottlenecks of this potential Majorana material platform. Bringing Nb in contact with the TI film induces charge doping from the SC to the TI, which shifts the Fermi level into the TI conduction band. For thick TI films, this results in band bending leading to the population of trivial TI quantum-well states at the interface. In the superconducting state, we uncover that the topological surface state experiences a sizable superconducting gap-opening at the SC/TI interface, which is furthermore robust against fluctuations of the Fermi energy. We also show that the trivial interface state is only marginally proximitized, potentially obstructing the realization of Majorana-based qubits in this material platform.

*We acknowledge support by the Joint Lab Virtual Materials Design (JL-VMD), the DFG under Germany's Excellence Strategy – Cluster of Excellence ML4Q EXC 2004/1 – 390534769, and by the Bavarian Ministry of Economic Affairs, Regional Development and Energy within High-Tech Agenda Project "Bausteine für das Quantencomputing auf Basistopologischer Materialien mit experimentellen und theoretischen Ansätzen".

Publication: P Rüßmann and S Blügel, 10.1103/PRB 105, 125143 (2022)
P Rüßmann and S Blügel, arXiv: 2208.14289 (2022)

Presenters

  • Philipp Ruessmann

    • University of Würzburg

Authors

  • Philipp Ruessmann

    • University of Würzburg
  • Stefan Blügel

    • Forschungszentrum Jülich GmbH
    • Forschungszentrum Jülich
    • Peter Grünberg Institut and Institute for Advanced Simulation, Forschungszentrum Jülich and JARA, 52425 Jülich, Germany
    • Forschungszentrum Jülich GmBH