• DocumentCode
    69167
  • Title

    85.9 Gb/in ^{ {2}} Recording Areal Density on Barium Ferrite Tape

  • Author

    Furrer, Simeon ; Lantz, Mark A. ; Engelen, Johan B. C. ; Pantazi, Angeliki ; Rothuizen, Hugo E. ; Cideciyan, Roy D. ; Cherubini, Giovanni ; Haeberle, Walter ; Jelitto, Jens ; Eleftheriou, Evangelos ; Oyanagi, Masahito ; Kurihashi, Yuichi ; Ishioroshi, Tak

  • Author_Institution
    IBM Res. - Zurich, Rüschlikon, Switzerland
  • Volume
    51
  • Issue
    4
  • fYear
    2015
  • fDate
    Apr-15
  • Firstpage
    1
  • Lastpage
    7
  • Abstract
    The recording performance of a new magnetic tape based on perpendicularly oriented barium ferrite particles was investigated using a 90-nm-wide giant-magnetoresistive reader and a prototype enhanced-field write head. A linear density of 600 kb/in with a postdetection byte-error rate <;3 × 10-2 was demonstrated based on measured recording data and a software read channel that used a noise-predictive maximum likelihood detection scheme. Using a new iterative decoding architecture, a user bit-error rate of <;1 × 10-20 can be achieved at this operating point. To facilitate aggressive scaling of the track density, we made several advances in the area of the track-following servo. First, we developed an experimental low-noise tape transport. Second, we implemented an optimized servo channel that together with an experimental timing-based servo pattern enables the generation of position estimates with nanoscale resolution at a high update rate. Third, we developed a field-programmable gate array-based prototyping platform in which we have implemented the servo channel and an H-based track-following controller, enabling real-time closed-loop track-following experiments. Combining these technologies, we achieved a position-error signal (PES) with a standard deviation of 10.3 nm. This magnitude of PES in combination with a 90-nm-wide reader allows the writing and reading of 177-nm-wide tracks at 600 kb/in, for an equivalent areal density of 85.9 Gb/in2. This paper clearly demonstrates the continued scaling potential of tape technologies based on low-cost particulate media.
  • Keywords
    barium compounds; error statistics; ferrite devices; ferrites; field programmable gate arrays; giant magnetoresistance; iterative decoding; magnetic heads; magnetic particles; magnetic recording noise; magnetic tapes; magnetoresistive devices; maximum likelihood detection; BaFe2O4; H-based track-following controller; barium ferrite tape; field-programmable gate array-based prototyping platform; giant-magnetoresistive reader; iterative decoding architecture; linear density; low-noise tape transport; magnetic tape; nanoscale resolution; noise-predictive maximum likelihood detection scheme; perpendicularly oriented barium ferrite particles; position-error signal; postdetection byte-error rate; prototype enhanced-field write head; real-time closed-loop track-following experiments; recording areal density; scaling potential; servo channel; software read channel; standard deviation; timing-based servo pattern; track density; track-following servo; update rate; user bit-error rate; Coercive force; Iterative decoding; Magnetic heads; Magnetic recording; Media; Servomotors; Signal to noise ratio; Magnetic recording; magnetic tape recording; signal detection; tracking;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2014.2355875
  • Filename
    7109968