Ubiquitous Superconducting Diode Effect in Superconductor Thin Films

ORAL

Abstract

The macroscopic coherence in superconductors supports dissipationless supercurrent which could play a central role in emerging quantum technologies. Accomplishing unequal supercurrents in the forward and backward directions may be expected to enable unprecedented functionalities. This nonreciprocity of critical supercurrents is called superconducting (SC) diode effect. We demonstrate strong SC diode effect in conventional SC thin films, such as niobium and vanadium, employing external magnetic fields as small as 1 Oe. Interfacing the SC layer with a ferromagnetic semiconductor EuS, we further accomplish a non-volatile SC diode effect reaching a giant efficiency of 65%. By careful control experiments and theoretical modeling, we demonstrate that the critical supercurrent nonreciprocity in SC thin films could be easily accomplished with asymmetrical vortex edge/surface barriers and the universal Meissner screening current governing the critical currents. Our engineering of the SC diode effect in simple systems opens door for novel technologies while revealing crucial prerequisites for the search of exotic superconducting states harboring finite-momentum Cooper pairing.

*This work was supported by ONR (N00014-20-1-2306), NSF (DMR 1700137 and 2218550); ARO (W911NF-20-2-0061, DURIP W911NF-20-1-0074). F.N. MFR, DZH acknowledge support from the ERC (Grant 804273). P.A.L. acknowledges DOE office of Basic Sciences Grant No. DE-FG0203ER46076 support.

Publication: https://doi.org/10.48550/arXiv.2205.09276

Presenters

  • Yasen Hou

    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MIT

Authors

  • Yasen Hou

    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MIT
  • Fabrizio Nichele

    • IBM Research - Zurich
  • Hang Chi

    • Massachusetts Institute of Technology
  • Alessandro Lodesani

    • Massachusetts Institute of Technology
  • Yingying Wu

    • University of California, Los Angeles
  • Markus Ritter

    • IBM Research - Zurich
  • Daniel Haxell

    • IBM Research - Zurich
  • Margarita Davydova

    • Massachusetts Institute of Technology
  • Stefan Ilic

    • Centro de Física de Materiales (CFM-MPC)
  • Ourania Glezakou-Elbert

    • Hanford High School
    • Hanford High School, Richland, Washington 99354, USA
  • Amith Varambally

    • Vestavia Hills High School
    • Vestavia Hills High School, Vestavia Hills, Alabama 35216, USA
  • Sebastian Bergeret

    • Centro de Física de Materiales (CFM-MPC)
  • Akashdeep Kamra

    • Autonomous University of Madrid
    • Universidad Autonoma de Madrid
  • Liang Fu

    • Massachusetts Institute of Technology MIT
    • Massachusetts Institute of Technology
  • Patrick A Lee

    • Massachusetts Institute of Technology MIT
    • Massachusetts Institute of Technology
  • Jagadeesh S Moodera

    • Massachusetts Institute of Technology MIT