Nature Communications (Oct 2023)

Spin-filtered measurements of Andreev bound states in semiconductor-superconductor nanowire devices

  • David van Driel,
  • Guanzhong Wang,
  • Alberto Bordin,
  • Nick van Loo,
  • Francesco Zatelli,
  • Grzegorz P. Mazur,
  • Di Xu,
  • Sasa Gazibegovic,
  • Ghada Badawy,
  • Erik P. A. M. Bakkers,
  • Leo P. Kouwenhoven,
  • Tom Dvir

DOI
https://doi.org/10.1038/s41467-023-42026-7
Journal volume & issue
Vol. 14, no. 1
pp. 1 – 9

Abstract

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Abstract Semiconductor nanowires coupled to superconductors can host Andreev bound states with distinct spin and parity, including a spin-zero state with an even number of electrons and a spin-1/2 state with odd-parity. Considering the difference in spin of the even and odd states, spin-filtered measurements can reveal the underlying ground state. To directly measure the spin of single-electron excitations, we probe an Andreev bound state using a spin-polarized quantum dot that acts as a bipolar spin filter, in combination with a non-polarized tunnel junction in a three-terminal circuit. We observe a spin-polarized excitation spectrum of the Andreev bound state, which can be fully spin-polarized, despite strong spin-orbit interaction in the InSb nanowires. Decoupling the hybrid from the normal lead causes a current blockade, by trapping the Andreev bound state in an excited state. Spin-polarized spectroscopy of hybrid nanowire devices, as demonstrated here, is proposed as an experimental tool to support the observation of topological superconductivity.