Tunable ratchet effects for vortices pinned by periodic magnetic dipole arrays
arXiv:cond-mat/0508318 · doi:10.1016/j.physc.2005.08.005
Abstract
The ratchet effect is demonstrated theoretically for the simple model of a vortex in a thin superconducting film interacting with a periodic array of magnetic dipoles placed in the vicinity of the film . The pinning potential for the vortex is calculated in the London limit and found to break spatial inversion symmetry and to depend on the orientation of the magnetic dipole moments. The motion of the vortex at zero temperature driven by a force oscillating periodically in time is investigated numerically. Drift vortex motion consisting of displacements by a translation vector of the dipole array during each period of oscillation is obtained and studied in detail. The direction of drift differs in general from that of the driving force, except if the driving force oscillates in a direction of high symmetry of the dipole array. The vortex drift velocity depends on the orientation of the magnetic moments, and can be tuned by rotating the dipoles. It is pointed out that if the magnetic moments are free to rotate, the ratchet effect can be produced and tuned by a magnetic field applied parallel to the film surfaces
9 pages, 8 figures. Submited to Physica C
References in corpus (4)
- Vortex rectification effects in films with periodic asymmetric pinning
- Experimental ratchet effect in superconducting films with periodic arrays of asymmetric potentials
- Pinning and creation of vortices in superconducting films by a magnetic dipole
- Tunable critical current for a vortex pinned by a magnetic dipole
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- Self organized mode locking effect in superconductor / ferromagnet hybrids
- Rocking ratchet induced by pure magnetic potentials with broken reflection symmetry
- Branching of the vortex nucleation period in superconductor Nb microtubes due to inhomogeneous transport current
- Direct visualization of magnetic vortex pinning in superconductors