• DocumentCode
    1242041
  • Title

    Anisotropy and critical current density of MgB2 thin films grown in-situ by molecular beam epitaxy

  • Author

    Jo, W. ; Beasley, M.R. ; Hammond, R.H.

  • Author_Institution
    Geballe Lab. for Adv. Mater., Stanford Univ., CA, USA
  • Volume
    13
  • Issue
    2
  • fYear
    2003
  • fDate
    6/1/2003 12:00:00 AM
  • Firstpage
    3257
  • Lastpage
    3260
  • Abstract
    We report transport properties of superconducting MgB2 thin films in-situ grown by molecular beam epitaxy. The MgB2 films show a superconducting transition at 34.5 K with ΔTc<1 K. We measure the in-plane electrical resistivity of the films in magnetic field to 8 T and estimate the upper critical field Hc2(0)∼32 T for field oriented along the c-axis and Hc2||(0)∼35 T in the plane of the film. We find the zero-temperature coherence lengths ξc(0)∼31 Å and ξab(0)∼36 Å, indicating the field anisotropy ratio is 1.2, comparable with reported in-situ epitaxial thin films, but less than single crystals. The calculated electronic mean free path l=25 Å is smaller than the coherence length, which places our films in the dirty limit. Estimates of the critical current density, Jc, using magnetic field hysteresis loops and the Bean critical state model give nominal critical current densities on the order of 106 A/cm2 at 15 K and self-field.
  • Keywords
    coherence length; critical current density (superconductivity); magnesium compounds; magnetisation; molecular beam epitaxial growth; superconducting critical field; superconducting epitaxial layers; type II superconductors; 15 K; 32 T; 35 T; Bean critical state model; MgB2; MgB2 thin films; anisotropy; critical current density; dirty limit; in-plane electrical resistivity; magnetic field hysteresis loops; molecular beam epitaxy; superconducting transition; transport properties; upper critical field; zero-temperature coherence lengths; Anisotropic magnetoresistance; Critical current density; Electric resistance; Electric variables measurement; Magnetic field measurement; Magnetic films; Molecular beam epitaxial growth; Superconducting epitaxial layers; Superconducting films; Superconducting thin films;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2003.812216
  • Filename
    1212320