Structural Transitions in Vortex Systems with Anisotropic Interactions

ORAL

Abstract

We introduce a model of vortices in type-II superconductors with an anisotropic vortex-vortex interaction potential. Using numerical simulations we show that the vortex lattice (VL) undergoes structural transitions as the anisotropy is increased. For a four-fold anisotropy we reproduce the well-known VL evolution from a triangular lattice at low anisotropy, to a rhombic intermediate state, and finally a square lattice for high anisotropy. In some cases a multi-q state is observed, consisting of an Archimedean tiling that combines square and triangular local ordering.
Simulations with a combined 6- and 12-fold anisotropy leads to a continuous rotation of triangular domains, consistent with the VL phase diagram observed in MgB2. This allow us to explore the effect of VL domain boundaries, expected to be responsible for the metastable VL phases observed in this material. The simulations provide a real space complement to the reciprocal space results obtained from small-angle neutron scattering studies.

*This research was supported in part by the Notre Dame Center for Research Computing. MRE was supported by the U.S. DOE under Award No. DE-SC0005051. This work was carried out under the auspices of the NNSA of the U.S. DOE at LANL under Contract No. DE-AC52-06NA25396.

Presenters

  • Morten Eskildsen

    • Department of Physics, University of Notre Dame
    • Univ of Notre Dame
    • Physics, Univ of Notre Dame
    • Physics, University of Norte Dame

Authors

  • Maciej Olszewski

    • Univ of Notre Dame
  • Morten Eskildsen

    • Department of Physics, University of Notre Dame
    • Univ of Notre Dame
    • Physics, Univ of Notre Dame
    • Physics, University of Norte Dame
  • Charles Reichhardt

    • Los Alamos Natl Lab
    • Theoretical Division, Los Alamos National Laboratory
  • Cynthia Reichhardt

    • Los Alamos Natl Lab
    • Theoretical Division, Los Alamos National Laboratory