skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Anisotropy of strong pinning in multi-band superconductors

Journal Article · · Superconductor Science and Technology

The field-angular dependence and anisotropy of the critical current density in iron-based superconductors is evaluated using a phenomenological approach featuring distinct anisotropy factors for the penetration depth and the coherence length. Both the weak collective pinning limit and the strong pinning limit relevant for iron-based superconductors at low magnetic fields are considered. It is found that in the more anisotropic materials, such as SmFeAsO and NdFeAsO, the field-angular dependence is completely dominated by the coherence length (upper critical field) anisotropy, thereby explaining recent results on the critical current in these materials. In less anisotropic superconductors, strong pinning can lead to an apparent inversion of the anisotropy. Finally, it is shown that, under all circumstances, the ratio of the c-axis and ab-plane critical current densities for the magnetic field along the ab-plane directly yields the coherence length anisotropy factor εξ.

Research Organization:
Ames Lab., Ames, IA (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
DOE Contract Number:
DE-AC02-07CH11358
OSTI ID:
1053236
Report Number(s):
IS-J 7778
Journal Information:
Superconductor Science and Technology, Vol. 25, Issue 8
Country of Publication:
United States
Language:
English

Similar Records

Anisotropy in flux pinning within the c basal plane of Bi sub 2 Sr sub 2 CaCu sub 2 O sub 8+ d
Journal Article · Fri Dec 01 00:00:00 EST 1989 · Physical Review (Section) B: Condensed Matter; (USA) · OSTI ID:1053236

Strong-pinning regimes by spherical inclusions in anisotropic type-II superconductors
Journal Article · Mon Nov 27 00:00:00 EST 2017 · Superconductor Science and Technology · OSTI ID:1053236

Single-vortex pinning and penetration depth in superconducting NdFeAsO1-xFx
Journal Article · Mon Oct 12 00:00:00 EDT 2015 · Physical Review. B, Condensed Matter and Materials Physics · OSTI ID:1053236

Related Subjects