English

Accelerated vortex dynamics across the magnetic 3D-to-2D crossover in disordered superconductors

Superconductivity 2018-08-21 v2

Abstract

Disorder can have remarkably disparate consequences in superconductors, driving superconductor-insulator transitions in ultrathin films by localizing electron pairs and boosting the supercurrent carrying capacity of thick films by localizing vortices (magnetic flux lines). Though the electronic 3D-to-2D crossover at material thicknesses dξd \sim \xi (coherence length) is well studied, a similarly consequential magnetic crossover at dLcd \sim L_c (pinning length) that should drastically alter material properties remains largely underexamined. According to collective pinning theory, vortex segments of length LcL_c bend to adjust to energy wells provided by point defects. Consequently, if dd truncates LcL_c, a change from elastic to rigid vortex dynamics should increase the rate of thermally activated vortex motion SS. Here, we characterize the dependence of SS on sample thickness in Nb and cuprate films. The results for Nb are consistent with collective pinning theory, whereas creep in the cuprate is strongly influenced by sparse large precipitates. We leverage the sensitivity of SS to dd to determine the generally unknown scale LcL_c, establishing a new route for extracting pinning lengths in heterogeneously disordered materials.

Keywords

Cite

@article{arxiv.1709.02776,
  title  = {Accelerated vortex dynamics across the magnetic 3D-to-2D crossover in disordered superconductors},
  author = {Serena Eley and Roland Willa and Masashi Miura and Michio Sato and Maxime Leroux and Michael David Henry and Leonardo Civale},
  journal= {arXiv preprint arXiv:1709.02776},
  year   = {2018}
}
R2 v1 2026-06-22T21:37:30.055Z