Peak effect due to competing vortex ground states in superconductors with large inclusions
arXiv:1806.01986 · doi:10.1103/PhysRevB.98.054517
Abstract
Superconductors can support large dissipation-free electrical currents only if vortex lines are effectively immobilized by material defects. Macroscopic critical currents depend on elemental interactions of vortices with individual pinning centers. Pinning mechanisms are nontrivial for large-size defects such as self-assembled nanoparticles. We investigate the problem of a vortex system interacting with an isolated defect using time-dependent Ginzburg-Landau simulations. In particular, we study the instability-limited depinning process and extract the dependence of the pin-breaking force on inclusion size and anisotropy for an \emph{isolated vortex line}. In the case of a \emph{vortex lattice} interacting with a large isolated defect, we find a series of first-order phase transitions at well-defined magnetic fields, when the number of vortex lines occupying the inclusion changes. The pin-breaking force has sharp local minima at those fields. As a consequence, in the case of isolated identical large-size defects, the field dependence of the critical current is composed of a series of peaks located in between the occupation-number transition points.
13 pages, 11 figures
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- Determination of HQET nonperturbative matrix elements with renormalon subtraction using Fourier transform
- Higher critical currents yet faster vortex creep in EuBaCuO films containing coherent artificial pinning centers
- Designing high-performance superconductors with nanoparticle inclusions: comparisons to strong pinning theory