• DocumentCode
    1547645
  • Title

    Coexisting ferromagnetism and superconductivity in hybrid rutheno-cuprate superconductors

  • Author

    Tallon, J. ; Bernhard, C. ; Bowden, M. ; Gilberd, P. ; Stoto, T. ; Pringle, D.

  • Author_Institution
    Ind. Res. Ltd., Lower Hutt, New Zealand
  • Volume
    9
  • Issue
    2
  • fYear
    1999
  • fDate
    6/1/1999 12:00:00 AM
  • Firstpage
    1696
  • Lastpage
    1699
  • Abstract
    We report the observation of microscopically coexisting ferromagnetism and superconductivity in a hybrid ruthenocuprate RuSr/sub 2/GdCu/sub 2/O/sub 8/, with T/sub c//spl les/40 K. By means of various substituents it is established that the superconductivity originates in the CuO/sub 2/ planes and the ferromagnetism in the RuO/sub 2/ planes, as expected. Muon spin relaxation measurements show that the ferromagnetism, with Curie temperature T/sub M/=132 K, is microscopically uniform and originates from the entire sample bulk. This is probably the first confirmed example of uniform microscopic coexistence of superconductivity and atomic ferromagnetism. The material is determined from thermopower measurements to be an underdoped cuprate with a projected T/sub c,max/=90-100 K, typical of a two-layer cuprate. The oxygen isotope effect exponent of /spl alpha//sub Tc/=1.7 is the largest observed in the high-T/sub c/ cuprates. These materials are expected to provide a rich source of new physics and applications.
  • Keywords
    Curie temperature; ferromagnetic materials; gadolinium compounds; high-temperature superconductors; magnetic superconductors; muon probes; ruthenium compounds; strontium compounds; superconducting transition temperature; thermoelectric power; 132 K; 40 K; 90 to 100 K; Curie temperature; RuSr/sub 2/GdCu/sub 2/O/sub 8/; coexisting ferromagnetism and superconductivity; high temperature superconductor; hybrid rutheno-cuprate superconductors; muon spin relaxation; oxygen isotope effect; thermopower measurements; Chemicals; Critical current density; Doping; High temperature superconductors; Magnetic fields; Magnetic materials; Microscopy; Superconducting epitaxial layers; Superconducting materials; Superconductivity;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/77.784779
  • Filename
    784779