Imaging the Anisotropic Nonlinear Meissner Effect in Unconventional Superconductors

ORAL

Abstract

We have directly imaged the anisotropic nonlinear Meissner effect in an unconventional superconductor through the nonlinear electrodynamic response of both (bulk) gap nodes and (surface) Andreev bound states [1]. A superconducting thin film is patterned into a compact self-resonant spiral structure, excited near resonance in the radio-frequency range, and scanned with a focused laser beam perturbation. At low temperatures, direction-dependent nonlinearities in the reactive and resistive properties of the resonator create photoresponse that maps out the directions of nodes, or of bound states associated with these nodes, on the Fermi surface of the superconductor. The method is demonstrated on the nodal superconductor YBa\textunderscore 2Cu\textunderscore 3O\textunderscore 7-$\backslash $delta and the results are consistent with theoretical predictions for the bulk and surface contributions. [1] A. P. Zhuravel, \textit{et al}., \underline {arXiv:1208.1511}. ~

*This was supported by the US DOE DESC 0004950, the ONR AppEl Center, Task D10 (N000140911190), and CNAM.

Authors

  • Steven Anlage

    • University of Maryland
    • Physics Dept., University of Maryland
    • University of Maryland-College Park
    • University of Maryland, College Park
  • A.P. Zhuravel

    • Verkin Inst. Low Temp Physics, NAS Ukraine, Kharkov
  • B.G. Ghamsari

    • Physics Dept., University of Maryland
  • C. Kurter

    • Physics Dept., University of Maryland
  • J. Abrahams

    • Physics Dept., University of Maryland
  • S. Remillard

    • Hope College
  • P. Jung

    • CFN, Karlsruhe Inst. Tech., Germany
  • A.V. Lukashenko

    • CFN, Karlsruhe Inst. Tech., Germany
  • Alexey Ustinov

    • CFN, Karlsruhe Inst. Tech., Germany