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Superfluid stiffness in strongly disordered superconducting films

POSTER

Abstract

In BCS-superconductors, the spectral gap, Eg, the pairing amplitude, ∆, and the mean-field critical temperature Tc0 are essentially identical energy scales. This is no longer the case in the presence of sufficiently strong disorder, where the superconductor-insulator transition (SIT) is approached. Moreover, in BCS-theory the superfluid density stiffness, JS, is fully determined by ∆ and the normal state resistance TN. and also this relation no longer holds in the presence of strong disorder, so that JS becomes a scale of its own right. Recent experiments have determined JS(T ) in ultrathin NbN films by measuring kinetic inductance and found a sharp Berezinski-Kosterlitz-Thouless(BKT) transition [2]. Our latest data cover JS(T ) over a wide range of disorder strength. We find that the BKT-transition remains sharp right up to the SIT and measure the characteristic scales Eg, JS, Tc0 and TBKT independently of two orders of magnitude in RN. We present complementary numerical calculations of the superfluid stiffness, obtained from the Boguliubov-deGennes (BdG) theory of disordered samples in a very broad range of disorder strengths. Building upon Ref. [1], we reach unprecedented system sizes large enough to capture the effect of mesoscopic wavefunction fluctuations on JS(0). A detailed comparison of our computational results with the measurements will be presented

REFERENCES

[1] Stosiek et al. PhysRevB . 101 . 144503.

[2] Weitzel et al. Phys. Rev. Lett. 131 . 186002

Presenters

  • Animesh Panda

    University of Regensburg

Authors

  • Animesh Panda

    University of Regensburg

  • Ferdinand H Evers

    University of Regensburg

  • Matthias Stosiek

    Technische Universität München

  • Christoph Strunk

    University of Regensburg

  • lea Pfaffinger

    University of Regensburg

  • Alexander Weitzel

    University of Regensburg

  • Michael Bücker

    University of Regensburg

  • Evegeni Ilichev

    Leibniz Institute of Photonic Technology

  • Sven Linzen

    Leibniz Institute of Photonic Technology