• DocumentCode
    1278204
  • Title

    Thermal effect limits in ultrahigh-density magnetic recording

  • Author

    Weller, Dieter ; Moser, Andreas

  • Author_Institution
    IBM Almaden Res. Center, San Jose, CA, USA
  • Volume
    35
  • Issue
    6
  • fYear
    1999
  • fDate
    11/1/1999 12:00:00 AM
  • Firstpage
    4423
  • Lastpage
    4439
  • Abstract
    In current longitudinal magnetic recording media, high areal density and low noise are achieved by statistical averaging over several hundred weakly coupled ferromagnetic grains per bit cell. Continued scaling to smaller bit and grain sizes, however, may prompt spontaneous magnetization reversal processes when the stored energy per particle starts competing with thermal energy, thereby limiting the achievable areal density. Charap et al. have predicted this to occur at about 40 Gbits/in2. This paper discusses thermal effects in the framework of basic Arrhenius-Neel statistical switching models. It is emphasized that magnetization decay is intimately related to high-speed-switching phenomena. Thickness-, temperature- and bit-density dependent recording experiments reveal the onset of thermal decay at “stability ratios” (KuV/KBT)0 ≃35 ± 2. The stability requirement is grain size dispersion dependent and shifts to about 60 for projected 40 Gbits/in 2 conditions and ten-year storage times. Higher anisotropy and coercivity media with reduced grain sizes are logical extensions of the current technology until write field limitations are reached. Future advancements will rely on deviations from traditional scaling. Squarer bits may reduce destabilizing stray fields inside the bit transitions. Perpendicular recording may shift the onset of thermal effects to higher bit densities. Enhanced signal processing may allow signal retrieval with fewer grains per bit. Finally, single grain per bit recording may be envisioned in patterned media, with lithographically defined bits
  • Keywords
    coercive force; grain size; magnetic anisotropy; magnetic recording; magnetic switching; magnetisation reversal; magnetocaloric effects; Arrhenius-Neel model; anisotropy; areal density; bit size; dynamic coercivity; ferromagnetic grain size; high-speed switching; longitudinal recording; noise; perpendicular recording; signal decay; spontaneous magnetization reversal; stability ratio; statistical averaging; thermal effect; ultrahigh-density magnetic recording; Anisotropic magnetoresistance; Coercive force; Couplings; Grain size; Limiting; Magnetic noise; Magnetic recording; Magnetization reversal; Signal processing; Stability;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.809134
  • Filename
    809134