Effective magnetic penetration depth in superconducting cylinders and spheres with highly anisotropic electrodynamics

Physics – Condensed Matter – Superconductivity

Scientific paper

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

9 pages, 4 figures

Scientific paper

10.1103/PhysRevB.79.094527

Effective magnetic penetration depth and microwave surface impedance are derived for anisotropic layered superconductors in the shape of spheres and long cylinders, where the external magnetic field is applied in the plane of the highly conducting layers to induce out-of-plane screening currents. The results are extended by analytic continuation to highly anisotropic conductors and to lossy superconductors at high frequency. The electrodynamics for the general case of a superconductor or metal with arbitrary anisotropy are presented. The treatment is then specialized to layered materials with unixaxial anisotropy, in which the penetration depth for currents flowing perpendicular to the layers, lambda_c, is much greater than that for in-plane currents, lambda_a. Exact solutions are found in the limit lambda_a goes to zero, and are expected to provide an accurate representation of many experiments on cuprates and other layered superconductors, particularly on grain-aligned powders.

No associations

LandOfFree

Say what you really think

Search LandOfFree.com for scientists and scientific papers. Rate them and share your experience with other people.

Rating

Effective magnetic penetration depth in superconducting cylinders and spheres with highly anisotropic electrodynamics does not yet have a rating. At this time, there are no reviews or comments for this scientific paper.

If you have personal experience with Effective magnetic penetration depth in superconducting cylinders and spheres with highly anisotropic electrodynamics, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Effective magnetic penetration depth in superconducting cylinders and spheres with highly anisotropic electrodynamics will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFWR-SCP-O-590570

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.