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Ginzburg-Landau theory of the superheating field anisotropy of layered superconductors

Cornell Affiliated Author(s)

Author

D.B. Liarte
M.K. Transtrum
J.P. Sethna

Abstract

We investigate the effects of material anisotropy on the superheating field of layered superconductors. We provide an intuitive argument both for the existence of a superheating field, and its dependence on anisotropy, for κ=λ/ξ (the ratio of magnetic to superconducting healing lengths) both large and small. On the one hand, the combination of our estimates with published results using a two-gap model for MgB2 suggests high anisotropy of the superheating field near zero temperature. On the other hand, within Ginzburg-Landau theory for a single gap, we see that the superheating field shows significant anisotropy only when the crystal anisotropy is large and the Ginzburg-Landau parameter κ is small. We then conclude that only small anisotropies in the superheating field are expected for typical unconventional superconductors near the critical temperature. Using a generalized form of Ginzburg Landau theory, we do a quantitative calculation for the anisotropic superheating field by mapping the problem to the isotropic case, and present a phase diagram in terms of anisotropy and κ, showing type I, type II, or mixed behavior (within Ginzburg-Landau theory), and regions where each asymptotic solution is expected. We estimate anisotropies for a number of different materials, and discuss the importance of these results for radio-frequency cavities for particle accelerators. © 2016 American Physical Society.

Date Published

Journal

Physical Review B

Volume

94

Issue

14

URL

https://www.scopus.com/inward/record.uri?eid=2-s2.0-84992146509&doi=10.1103%2fPhysRevB.94.144504&partnerID=40&md5=c9c3648d5006a57b206772eea1c18352

DOI

10.1103/PhysRevB.94.144504

Group (Lab)

James Sethna Group

Funding Source

1312160

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