• DocumentCode
    1241393
  • Title

    Laminated antiferromagnetically coupled media - optimization and extendibility

  • Author

    Tang, Kai ; Margulies, David ; Polcyn, Adam ; Supper, Natacha ; Do, Hoa ; Mirzamaani, Mohammad ; Doerner, Mary ; Bian, Xiaoping ; Mercado, Mark ; Tang, Li ; Rosen, Hal ; Fullerton, Eric E. ; Tsang, Ching ; Nimmagadda, Rao ; Xiao, Qi-Fan

  • Author_Institution
    Hitachi Global Storage Technol., Inc., San Jose, CA, USA
  • Volume
    41
  • Issue
    2
  • fYear
    2005
  • Firstpage
    642
  • Lastpage
    647
  • Abstract
    Lamination of multiple isolated magnetic layers has been shown to be an effective method to significantly increase signal-to-noise ratio in longitudinal media. These laminated media, however, are accompanied by low overwrite and wide magnetic pulse width, mainly as a result of poor writing of the bit transitions in the magnetic layer further away from the head and an offset in the transition position in the multiple magnetic layers resulting from head field spacing loss. We have demonstrated that the transition writing and transition alignment in the multiple magnetic layers of the laminated antiferromagnetically coupled (AFC) media can be optimized by adjusting the magnetic anisotropy of the relevant magnetic layers to compensate for the reduction of the head field magnitude with spacing. Such optimization results in significant improvements in media recording performance, leading to successful application of this medium technology. In this paper, we will highlight some of these improvements and discuss our approaches to further improve the recording performance by reducing the thicknesses of the magnetic layers and the lamination spacer layer in the laminated AFC film stack and by introducing additional elements in the magnetic layer.
  • Keywords
    antiferroelectric materials; magnetic anisotropy; magnetic multilayers; magnetic recording; optimisation; bit transitions; head field spacing loss; high-moment magnetic alloy; laminated antiferromagnetically coupled media; lamination spacer layer; longitudinal media; magnetic anisotropy; magnetic layer; media recording performance; multiple isolated magnetic layers; quinary magnetic alloy; signal-to-noise ratio; transition alignment; transition writing; Antiferromagnetic materials; Automatic frequency control; Lamination; Magnetic anisotropy; Magnetic heads; Magnetic recording; Perpendicular magnetic anisotropy; Signal to noise ratio; Space vector pulse width modulation; Writing; Antiferromagnetically coupled (AFC) media; head field spacing loss; high-moment magnetic alloy; laminated; longitudinal media; magnetic anisotropy; quinary magnetic alloy;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2004.838054
  • Filename
    1396195