Vortex configurations and critical parameters in superconducting thin films containing antidot arrays: Nonlinear Ginzburg-Landau theory
arXiv:cond-mat/0609772 · doi:10.1103/PhysRevB.74.174512
Abstract
Using the non-linear Ginzburg-Landau (GL) theory, we obtain the possible vortex configurations in superconducting thin films containing a square lattice of antidots. The equilibrium structural phase diagram is constructed which gives the different ground-state vortex configurations as function of the size and periodicity of the antidots for a given effective GL parameter . Giant-vortex states, combination of giant- and multi-vortex states, as well as symmetry imposed vortex-antivortex states are found to be the ground state for particular geometrical parameters of the sample. The antidot occupation number is calculated as a function of related parameters and comparison with existing expressions for the saturation number and with experimental results is given. For a small radius of antidots a triangular vortex lattice is obtained, where some of the vortices are pinned by the antidots and some of them are located between them. Transition between the square pinned and triangular vortex lattices is given for different values of the applied field. The enhanced critical current at integer and rational matching fields is found, where the level of enhancement at given magnetic field directly depends on the vortex-occupation number of the antidots. For certain parameters of the antidot lattice and/or temperature the critical current is found to be larger for higher magnetic fields. Superconducting/normal phase boundary exhibits different regimes as antidots are made larger, and we transit from a plain superconducting film to a thin-wire superconducting network. Presented results are in good agreement with available experiments and suggest possible new experiments.
15 pages and 20 figures
References in corpus (1)
Cited by in corpus (42)
- Realization of Artificial Ice Systems for Magnetic Vortices in a Superconducting MoGe Thin-film with Patterned Nanostructures
- Large Magnetoresistance Oscillations in Mesoscopic Superconductors Due to Current-Excited Moving Vortices
- Superconducting Vortex Lattices for Ultracold Atoms
- Optimization of vortex pinning by nanoparticles using simulations of time-dependent Ginzburg-Landau model
- Vortex Molecular Crystal and Vortex Plastic Crystal States in Honeycomb and Kagome Pinning Arrays
- Effect of hexagonal patterned arrays and defect geometry on the critical current of superconducting films
- Moving Vortex Phases, Dynamical Symmetry Breaking, and Jamming for Vortices in Honeycomb Pinning Arrays
- Mott insulator phases and first-order melting in BSCCO crystals with periodic surface holes
- Transport Anisotropy as a Probe of the Interstitial Vortex State in Superconductors with Artificial Pinning Arrays
- Suppression of dissipation in Nb thin films with triangular antidot arrays by random removal of pinning sites
- Stabilizing fractional vortices in multiband superconductors with periodic pinning arrays
- The onset, evolution and magnetic braking of vortex lattice instabilities in nanostructured superconducting films
- Pinning, Ordering, and Dynamics of Vortices in Conformal Crystal and Gradient Pinning Arrays
- Vortex states in nanoscale superconducting squares: the influence of quantum confinement
- Spontaneous Transverse Response and Amplified Switching in Superconductors with Honeycomb Pinning Arrays
- Orientational Ordering, Buckling, and Dynamic Transitions for Vortices Interacting with a Periodic Quasi-One Dimensional Substrate
- Hysteretic vortex matching effects in high- superconductors with nanoscale periodic pinning landscapes fabricated by He ion beam projection technique
- Structural Transitions and Dynamical Regimes for Directional Locking of Particles Driven over Periodic Substrates
- Transverse ac Driven and Geometric Ratchet Effects for Vortices in Conformal Crystal Pinning Arrays
- Honeycomb, square, and kagomé vortex lattices in superconducting systems with multi-scale inter-vortex interactions
- Guided nucleation of superconductivity on a graded magnetic substrate
- Collective vortex phases in periodic plus random pinning potential
- Comparing the Dynamics of Skyrmions and Superconducting Vortices
- Phase diagrams of vortex matter with multi-scale inter-vortex interactions in layered superconductors
- Dynamic transition from Mott-like to metal-like state of the vortex lattice in a superconducting film with a periodic array of holes
- Wire network behavior in superconducting Nb films with diluted triangular arrays of holes
- Scanning quantum vortex microscopy reveals thickness-dependent pinning nano-network in superconducting Nb-films
- Positive and Negative Drag, Dynamic Phases, and Commensurability in Coupled One-Dimensional Channels of Particles with Yukawa Interactions
- Switching and Jamming Transistor Effect for Vortex Matter in Honeycomb Pinning Arrays with ac Drives
- Transverse Commensurability Effect for Vortices in Periodic Pinning Arrays
- Vortex pinning vs superconducting wire network: origin of periodic oscillations induced by applied magnetic fields in superconducting films with arrays of nanomagnets
- Vortex Transport and Pinning Effectiveness in Conformal Pinning Arrays
- The phase boundary of superconducting niobium thin films with antidot arrays fabricated with microsphere photolithography
- Origin of Matching Effect in Anti-dot Array of Superconducting NbN Thin Films
- Multi-vortex versus interstitial vortices scenario in superconducting antidot arrays
- Abnormal magnetoresistance behavior in Nb thin film with rectangular antidot lattice
- Magnetic force microscopy versus scanning quantum-vortex microscopy: Probing pinning landscape in granular niobium films
- The effect of impurities on spin polarized Zeeman bound states in dilute magnetic semiconductor-superconductor hybrids
- Chaos in Kicked Ratchets
- Disorder-induced trapping and anti-trapping of vortices in type-II superconductors
- Magnetic-field dependent vortex dynamics and critical currents in superconducting microwires with regular large-area perforation by pinholes
- Designing high-performance superconductors with nanoparticle inclusions: comparisons to strong pinning theory