• DocumentCode
    1156619
  • Title

    Material and Layer Design to Overcome Writing Challenges in Bit-Patterned Media

  • Author

    Sbiaa, Rachid ; Tan, E.L. ; Aung, K.O. ; Wong, S.K. ; Srinivasan, K. ; Piramanayagam, S.N.

  • Author_Institution
    Data Storage Inst., Agency for Sci., Singapore
  • Volume
    45
  • Issue
    2
  • fYear
    2009
  • Firstpage
    828
  • Lastpage
    832
  • Abstract
    In this paper, the problem of writability in bit-patterned media (BPM) for high areal density will be discussed. A new film structure is proposed, made of a composite in-plane and perpendicular anisotropy layers to improve writability and reduce the time of magnetization switching in BPM. To demonstrate the efficiency of an in-plane anisotropy layer in assisting the switching of the magnetization of the high perpendicular anisotropy recording layer, we use micromagnetic simulation to study magnetization reversals in BPM for 5 Tb/in2. Experiments have been carried out on patterned arrays of 60-nm-size dots made of [Co(0.3 nm)/Pd(0.8 nm)]x15 multilayer and Co(2 nm)/[Co(0.3 nm)/Pd(0.8 nm)]x15 composite structure. The mean switching field calculated from remanence magnetization curves shows a reduction of more than 50% from its initial value by adding a 2-nm-thick Co bottom layer with in-plane anisotropy. No difference in switching field distribution was observed in the two structures studied, indicating the merit of assisting the switching of high anisotropy patterned media by exchange coupling to an in-plane anisotropy layer.
  • Keywords
    cobalt; exchange interactions (electron); magnetic anisotropy; magnetic multilayers; magnetic recording; magnetic switching; magnetisation reversal; micromagnetics; palladium; BPM; Co-Pd; bit-patterned media; composite structure; exchange coupling; film structure; high perpendicular anisotropy recording layers; magnetization reversals; magnetization switching; micromagnetic simulation; multilayers; remanence magnetization; size 0.3 nm; size 0.8 nm; size 2 nm; Bit-patterned media; perpendicular magnetic recording; switching field distribution;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2008.2010644
  • Filename
    4782113