• DocumentCode
    54960
  • Title

    Influence of the Thickness of the Ferro- and Antiferromagnetic Phases on Magnetic Properties in Epitaxial Heterostructures Based on Exchange Biased La-Ca-Mn-O System

  • Author

    Gomez, Maria Eugenia ; Campillo, Gloria E. ; Diez, S. ; Hoffmann, Axel ; Lopera, Wilson

  • Author_Institution
    Dept. of Phys., Univ. del Valle, Cali, Colombia
  • Volume
    49
  • Issue
    8
  • fYear
    2013
  • fDate
    Aug. 2013
  • Firstpage
    4576
  • Lastpage
    4581
  • Abstract
    Metal oxides show fascinating physical properties such as ferromagnetism, antiferromagnetism, high temperature superconductivity, ferroelectricity, or even multiferroicity. For many possible electronic applications as well as fundamental studies, it is essential to fabricate epitaxial layered films and multilayers of these materials having complex lattice structures with sharp interfaces, preserving epitaxiallity through the whole structure. We have grown these kind of oxide heterostructures on single crystal (001) oriented SrTiO3 substrates by using an in-situ DC sputtering technique at high oxygen pressures. Specifically, we report the study of magnetic and transport properties in ferromagnetic/antiferromagnetic, F/AF, heterostructures based on the Ca-doped lanthanum manganite system. We artificially grew La2/3Ca1/3MnO3/La1/3Ca2/3MnO3 heterostructures, maintaining constant the total thickness of the sample and systematically varying the thicknesses of the antiferromagnetic layer (tAF) and ferromagnetic layer (tF). Magnetization measurements indicate a dependence of Curie temperature, exchange bias field, and magnetoresistance behavior with the tAF/tF ratio.
  • Keywords
    Curie temperature; antiferromagnetic materials; calcium compounds; ferromagnetic materials; lanthanum compounds; magnetic epitaxial layers; magnetic multilayers; magnetisation reversal; magnetoresistance; sputter deposition; superlattices; (001) oriented SrTiO3 substrates; Curie temperature; LaCaMnO3-LaCaMnO3; SrTiO3; antiferromagnetic phase; epitaxial heterostructures; epitaxial layered films; exchange bias field; ferroelectricity; ferromagnetic phase; film thickness; high temperature superconductivity; in-situ DC sputtering; lattice structures; magnetic properties; magnetization; magnetoresistance property; multiferroicity; multilayers; physical properties; transport properties; Magnetic hysteresis; Magnetic multilayers; Magnetic superlattices; Magnetization; Saturation magnetization; Temperature measurement; Ca-doped lanthanum manganite system; exchange biased oxide materials; ferromagnetic/antiferromagnetic superlattices;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2013.2257711
  • Filename
    6566101