The browser you are using is not supported by this website. All versions of Internet Explorer are no longer supported, either by us or Microsoft (read more here: https://www.microsoft.com/en-us/microsoft-365/windows/end-of-ie-support).

Please use a modern browser to fully experience our website, such as the newest versions of Edge, Chrome, Firefox or Safari etc.

Claes Thelander

Claes Thelander

Associate Professor

Claes Thelander

Magnetic-Field-Independent Subgap States in Hybrid Rashba Nanowires

Author

  • Christian Jünger
  • Raphaëlle Delagrange
  • Denis Chevallier
  • Sebastian Lehmann
  • Kimberly A. Dick
  • Claes Thelander
  • Jelena Klinovaja
  • Daniel Loss
  • Andreas Baumgartner
  • Christian Schönenberger

Summary, in English

Subgap states in semiconducting-superconducting nanowire hybrid devices are controversially discussed as potential topologically nontrivial quantum states. One source of ambiguity is the lack of an energetically and spatially well defined tunnel spectrometer. Here, we use quantum dots directly integrated into the nanowire during the growth process to perform tunnel spectroscopy of discrete subgap states in a long nanowire segment. In addition to subgap states with a standard magnetic field dependence, we find topologically trivial subgap states that are independent of the external magnetic field, i.e., that are pinned to a constant energy as a function of field. We explain this effect qualitatively and quantitatively by taking into account the strong spin-orbit interaction in the nanowire, which can lead to a decoupling of Andreev bound states from the field due to a spatial spin texture of the confined eigenstates. This result constitutes an important step forward in the research on superconducting subgap states in nanowires, such as Majorana bound states.

Department/s

  • Solid State Physics
  • NanoLund: Center for Nanoscience
  • Centre for Analysis and Synthesis

Publishing year

2020

Language

English

Publication/Series

Physical Review Letters

Volume

125

Issue

1

Document type

Journal article

Publisher

American Physical Society

Topic

  • Condensed Matter Physics
  • Nano Technology

Status

Published

ISBN/ISSN/Other

  • ISSN: 0031-9007