• DocumentCode
    1509624
  • Title

    Thermal stability of FeTaN as a function of N and Ta content

  • Author

    Minor, M.Kevin ; Barnard, John A.

  • Author_Institution
    Center for Mater. for Inf. Technol., Alabama Univ., Tuscaloosa, AL, USA
  • Volume
    33
  • Issue
    5
  • fYear
    1997
  • fDate
    9/1/1997 12:00:00 AM
  • Firstpage
    3808
  • Lastpage
    3810
  • Abstract
    FeTaN thin films promise to be a good candidate for inductive head pole materials. FeTaN thin films which are nanocrystalline and possess the required magnetic properties in the as-deposited state are advantageous because they do not require a high temperature processing anneal. However, FeTaN films must possess sufficient thermal stability in order to maintain their magnetic properties while being processed into inductive heads. In this study we have undertaken systematic microstructural and magnetic measurements on nanocrystalline, single-layer FeTaN thin films as a function of N and Ta content and annealing temperature. The annealing temperatures used are less than 300°C and are meant to simulate head processing conditions. The addition of Ta was found to enhance thermal stability. By stabilizing the microstructure, Ta also stabilizes magnetic properties such as coercivity and magnetostriction (structure determines properties). The optimum amount of Ta for thermal stability while maintaining good magnetic properties was 10 weight percent. In the highest N content Fe-10TaN thin films, soft magnetic properties were found to be controlled by the magnetic domain structures which are governed by magnetoelastic anisotropy. These films which exhibited a magnetoelastic anisotropy less than -2×104 ergs/cm3 also exhibited stripe domains which resulted in relatively high coercivities
  • Keywords
    annealing; coercive force; crystal microstructure; ferromagnetic materials; iron alloys; magnetic anisotropy; magnetic domains; magnetic heads; magnetic thin films; magnetoelastic effects; magnetostriction; nanostructured materials; soft magnetic materials; tantalum alloys; thermal stability; FeTaN; FeTaN thin films; N content; Ta content; annealing temperature; as-deposited state; coercivities; head processing conditions; inductive head pole materials; inductive heads; magnetic domain structures; magnetic properties; magnetoelastic anisotropy; magnetostriction; microstructural measurements; nanocrystalline; soft magnetic properties; stripe domains; thermal stability; Annealing; Coercive force; Magnetic anisotropy; Magnetic domains; Magnetic films; Magnetic heads; Magnetic properties; Magnetostriction; Temperature; Thermal stability;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.619578
  • Filename
    619578