The flux-line lattice in superconductors

Решётка линий потока в сверхпроводниках
Ernst Helmut Brandt
1995-11-01

Abrikosov vorticesGinzburg–Landau theoryLondon theoryflux-line latticehigh-temperature superconductors
Magnetic flux can penetrate a type-II superconductor in the form of Abrikosov vortices (also called flux lines, flux tubes, or fluxons) each carrying a quantum of magnetic flux phi 0 =h/2e. These tiny vortices of supercurrent tend to arrange themselves in a triangular flux-line lattice (FLL), which is more or less perturbed by material inhomogeneities that pin the flux lines, and in high-T c superconductors (HTSCs) also by thermal fluctuations. Many properties of the FLL are well described by the phenomenological Ginzburg-Landau theory or by the electromagnetic London theory, which treats the vortex core as a singularity. In Nb alloys and HTSCs the FLL is very soft mainly because of the large magnetic penetration depth lambda . The shear modulus of the FLL is c 66 ~1/ lambda 2 , and the tilt modulus c 44 (k)~(1+k 2 lambda 2 ) -1 is dispersive and becomes very small for short distortion wavelengths 2 pi /k<< lambda . This softness is enhanced further by the pronounced anisotropy and layered structure of HTSCs, which strongly increases the penetration depth for currents along the c axis of these (nearly uniaxial) crystals and may even cause a decoupling of two-dimensional vortex lattices in the Cu-O layers. Thermal fluctuations and softening may `melt` the FLL and cause thermally activated depinning of the flux lines or ofthe two-dimensional `pancake vortices` in the layers. Various phase transitions are predicted for the FLL in layered HTSCs. Although large pinning forces and high critical currents have been achieved, the small depinning energy so far prevents the application of HTSCs as conductors at high temperatures except in cases when the applied current and the surrounding magnetic field are small.
1
Abrikosov vortices in type-II superconductors generally organize into a triangular flux-line lattice carrying one magnetic-flux quantum per vortex.
2
Anisotropy and layered structures in high-temperature superconductors further soften the lattice, potentially decoupling two-dimensional pancake-vortex lattices in Cu–O layers.
3
Ginzburg–Landau and London theories describe many flux-line-lattice properties, while material inhomogeneities and thermal fluctuations perturb the lattice.
4
The flux-line lattice is especially soft in niobium alloys and high-temperature superconductors: its shear modulus scales as 1/λ², and its tilt modulus decreases strongly at short wavelengths.
5
Thermal fluctuations and lattice softening can melt the flux-line lattice or enable thermally activated depinning, limiting high-temperature-superconductor conductors despite large pinning forces and critical currents.

the triangular flux-line lattice (Abrikosov vortex lattice) in type-II superconductors, including Nb alloys and high-Tc layered superconductors

the lattice’s elastic softness, anisotropy, thermal fluctuation–induced melting, vortex depinning, and related phase transitions and transport limitations

Publication Details
Publication Date
1995-11-01
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Ernst Helmut Brandt
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%