• DocumentCode
    780853
  • Title

    Measurements and modeling of soft underlayer materials for perpendicular magnetic recording

  • Author

    Chang, ChungHee ; Plumer, Martin ; Brucker, Charles ; Chen, Jianping ; Ranjan, Rajiv ; Van Ek, Johannes ; Yu, Jun ; Karns, Duane ; Kubota, Yukiko ; Ju, Ganping ; Weller, Dieter

  • Author_Institution
    Seagate Technol., Fremont, CA, USA
  • Volume
    38
  • Issue
    4
  • fYear
    2002
  • fDate
    7/1/2002 12:00:00 AM
  • Firstpage
    1637
  • Lastpage
    1642
  • Abstract
    Measurements and modeling of soft magnetic underlayer (SUL) materials for perpendicular magnetic recording application are carried out. The process dependent magnetic properties of FeCoB, CoZrNb, and FeAlN SUL materials on glass and aluminum disk substrates are studied and correlated with spin-stand noise performance. The SUL-induced dc noise amplitude approaches the electronic noise floor for certain material combinations, e.g., FeCoB or CoZrNb on glass, when care is taken to relieve stress-induced perpendicular anisotropy by thermal annealing. Landau-Lifshitz-Gilbert micromagnetics, finite-element method calculations, and a micromagnetic recording model show that write field amplitude, write field gradient, and readback waveform are only slightly impacted by SUL moment in the 1-2 T range. Much more important are the head-to-SUL distance and the write head saturation moment. These results suggest that extremely high SUL moment may not be necessary, which can be leveraged to meet other key practical requirements such as corrosion resistance and manufacturability
  • Keywords
    annealing; cobalt alloys; ferromagnetic materials; finite element analysis; iron alloys; magnetic recording noise; magnetic thin films; niobium alloys; perpendicular magnetic anisotropy; perpendicular magnetic recording; soft magnetic materials; zirconium alloys; 1 to 2 T; CoZrNb; FeAlN; FeCoB; Landau-Lifshitz-Gilbert micromagnetics; SUL-induced dc noise amplitude; electronic noise floor; finite-element method calculations; head-to-SUL distance; micromagnetic recording model; perpendicular magnetic recording; readback waveform; soft underlayer materials; spin-stand noise performance; stress-induced perpendicular anisotropy; thermal annealing; write field amplitude; write field gradient; write head saturation moment; Aluminum; Glass; Magnetic materials; Magnetic noise; Magnetic properties; Micromagnetics; Noise level; Perpendicular magnetic recording; Saturation magnetization; Soft magnetic materials;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2002.1017748
  • Filename
    1017748