• DocumentCode
    40911
  • Title

    Head–Disk Interface Materials Issues in Heat-Assisted Magnetic Recording

  • Author

    Marchon, Bruno ; Xing-Cai Guo ; Pathem, Bala Krishna ; Rose, Franck ; Qing Dai ; Feliss, Norbert ; Schreck, Erhard ; Reiner, James ; Mosendz, O. ; Takano, Kyoya ; Hoa Do ; Burns, Jack ; Saito, Yuya

  • Author_Institution
    HGST, Western Digital Co., San Jose, CA, USA
  • Volume
    50
  • Issue
    3
  • fYear
    2014
  • fDate
    Mar-14
  • Firstpage
    137
  • Lastpage
    143
  • Abstract
    In this paper, some issues concerning the reliability of heat-assisted magnetic recording (HAMR) media are highlighted. The large roughness of the grain structure originates from a surface energy mismatch between the FePt grains and the graphene-like segregant material. A simple roughness model, based on interfacial energies, is proposed that can quantitatively predict media grain structure and roughness. The thermal behavior of the disk lubricant is reviewed both experimentally as well as theoretically using molecular dynamics (MD) and density functional theory (DFT). The lubricant film can be subjected to evaporation and oxidation, both of which follow an Arrhenius reaction rate. MD also predicts that the disk carbon overcoat can undergo structural changes under thermal transient exposure in the nanosecond time frame, and Raman imaging performed on a disk zone that was HAMR written shows small but unequivocal changes, consistent with an increase in carbon sp2 cluster size.
  • Keywords
    crystal microstructure; density functional theory; iron compounds; lubricants; magnetic disc storage; magnetic materials; magnetic recording; molecular dynamics method; reliability; surface energy; thermal analysis; transient analysis; Arrhenius reaction rate; DFT; FePt; HAMR media reliability; MD; Raman imaging; carbon sp2 cluster size; density functional theory; disk carbon overcoat; disk lubricant; disk zone; evaporation; grain structure roughness; graphene-like segregant material; head-disk interface materials; heat-assisted magnetic recording; interfacial energies; lubricant film; media grain structure prediction; molecular dynamics; nanosecond time frame; oxidation; roughness model; surface energy mismatch; thermal transient exposure; Carbon; Heat-assisted magnetic recording; Lubricants; Media; Rough surfaces; Surface roughness; Temperature measurement; Head–disk interface (HDI); heat-assisted magnetic recording (HAMR); lubricant; magnetic recording; tribology;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2013.2283068
  • Filename
    6774949