From Andreev to Majorana bound states in hybrid superconductor-semiconductor nanowires

Research output: Contribution to journalReviewResearchpeer-review

Documents

  • Fulltext

    Accepted author manuscript, 8.36 MB, PDF document

  • Elsa Prada
  • Pablo San-Jose
  • Michiel W. A. de Moor
  • Attila Geresdi
  • Eduardo J. H. Lee
  • Jelena Klinovaja
  • Daniel Loss
  • Nygård, Jesper
  • Ramon Aguado
  • Leo P. Kouwenhoven

Inhomogeneous superconductors can host electronic excitations, known as Andreev bound states (ABSs), below the superconducting energy gap. With the advent of topological superconductivity, a new kind of zero-energy ABS with exotic qualities, known as a Majorana bound state (MBS), has been discovered. A special property of MBS wavefunctions is their non-locality, which, together with non-Abelian braiding, is the key to their promise in topological quantum computation. We focus on hybrid superconductor-semiconductor nanowires as a flexible and promising experimental platform to realize one-dimensional topological superconductivity and MBSs. We review the main properties of ABSs and MBSs, state-of-the-art techniques for their detection and theoretical progress beyond minimal models, including different types of robust zero modes that may emerge without a band-topological transition.

Topological Majorana bound states have potential for encoding, manipulating and protecting quantum information in condensed-matter systems. This Review discusses emergence and characterization of Majorana bound states in realistic devices based on hybrid semiconducting nanowires and their connection to more conventional Andreev bound states.

Original languageEnglish
JournalNature Reviews Physics
Volume2
Issue number10
Pages (from-to)575-594
Number of pages20
DOIs
Publication statusPublished - Oct 2020

    Research areas

  • JOSEPHSON CURRENT, ZERO MODES, QUANTUM, FERMIONS, SUPERCURRENT, CONDUCTANCE, SIGNATURE, TRANSPORT, REVERSAL, EPITAXY

ID: 252154126