Spectroscopic Visualization of Hard Quasi-1D Superconductivity Induced in Nanowires Deposited on a Quasi-2D Indium film

ORAL

Abstract

Following significant progress in the visualization and characterization of hybrid superconducting-semiconducting systems, greatly propelled by reports of Majorana zero modes in nanowire devices, considerable attention has been devoted to investigating the electronic structure at the buried superconducting-semiconducting interface and the nature of the induced superconducting correlations. The properties of that interface and the structure of the electronic wave functions that occupy it determine the functionality and the topological nature of the induced superconducting state. Here, we introduce a novel hybrid platform for proximity-inducing superconductivity in InAs0.6Sb0.4 nanowires, leveraging a unique architecture and material combination. By dispersing these nanowires over a superconducting Indium film we exploit Indium's high critical temperature of 3.7~K and the anticipated high spin-orbit and Zeeman couplings of InAs0.6Sb0.4. This design preserves the pristine top facet of the nanowires, making it highly compatible with scanning tunneling spectroscopy. Using this architecture we demonstrate that the mechanical contact supports Cooper-pair transparency as high as 90\%, comparable with epitaxial interfaces. The anisotropic angular response to an applied magnetic field shows the quasi-two-dimensional nature of the parent superconductivity in the Indium film and the quasi-one-dimensional nature of the induced superconductivity in the nanowires. Our platform offers robust and advantageous foundations for studying the emergence of topological superconductivity and the interplay of superconductivity and magnetism using atomic-scale spectroscopic tools.

Publication: Gupta, Ambikesh, et al. "Spectroscopic Visualization of Hard Quasi-1D Superconductivity Induced in Nanowires Deposited on a Quasi-2D Indium film." arXiv preprint arXiv:2409.19736 (2024).

Presenters

  • Ambikesh Gupta

    • Weizmann Institute of Science

Authors

  • Ambikesh Gupta

    • Weizmann Institute of Science
  • PRANAB KUMAR NAG

    • Weizmann Institute of Science
  • Samuel D. D Escribano

    • Weizmann Institute of Science
  • Yuval Oreg

    • Weizmann Institute of Science
  • Nurit Avraham

    • Weizmann Institute of Science
  • Haim Beidenkopf

    • Weizmann Institute of Science
  • Hadas Shtrikman

    • Weizmann Institute of science
    • Weizmann Institute of Science
  • Man Suk Song

    • Weizmann Institute of science
    • Weizmann Institute of Science
  • Shai Kiryati

    • Weizmann Institute of science