• DocumentCode
    1075493
  • Title

    GMR multilayers on a new embossed surface

  • Author

    Chalastaras, Athanasios ; Malkinski, Leszek M. ; Jung, Jin-Seung ; Oh, Seung-Lim ; Lee, Jin-Kyu ; Ventrice, Carl A., Jr. ; Golub, Volodymyr ; Taylor, Gleander

  • Author_Institution
    Dept. of Phys., Univ. of New Orleans, LA, USA
  • Volume
    40
  • Issue
    4
  • fYear
    2004
  • fDate
    7/1/2004 12:00:00 AM
  • Firstpage
    2257
  • Lastpage
    2259
  • Abstract
    It has been shown that the deposition of magnetoresistive multilayers on stepped, corrugated or V-grooved surfaces can increase the magnitude of giant magnetoresistance (GMR). The primary reason for this enhancement of GMR is that the in-the-substrate-plane current crosses multiple magnetic layers which results in the mixed current-in-plane and current perpendicular to plane modes called current at an angle to the plane mode. In our studies, we use a novel substrate consisting of nano-hemispheres organized in a regular hexagonal array. The substrate was produced by anodization of Al and subsequent etching of alumina membrane. Scanning electron microscopy was used to investigate larger areas and cross-sectional images of the embossed surface, whereas detailed analysis of the surface structure was made by high resolution atomic force microscopy. We deposited uncoupled Co/Cu multilayers on the alumina substrate with an 8-nm-thick Fe buffer using magnetron sputtering. Our preliminary studies of the magnetotransport using a physical property measurement system (quantum design) demonstrated that the samples on the new substrate have an enhanced GMR effect compared to the samples with similar composition deposited on smooth (100) Si wafers. Because of the inexpensive method of fabrication of the embossed substrate, the GMR structures deposited on this substrate have a potential for use in magnetic sensors.
  • Keywords
    atomic force microscopy; giant magnetoresistance; magnetic multilayers; scanning electron microscopy; sputtering; substrates; surface structure; 8 nm; Al; Al anodization; Fe; GMR multilayers; GMR structures; V-grooved surfaces; alumina membrane; alumina substrate; corrugated surfaces; embossed surface; enhanced GMR effect; giant magnetoresistance; hexagonal array; high resolution atomic force microscopy; in-the-substrate-plane current; magnetic sensors; magnetoresistive multilayers; magnetotransport; magnetron sputtering; multiple magnetic layers; nanohemispheres; physical property measurement system; plane modes; quantum design; scanning electron microscopy; stepped surfaces; surface structure; Atomic force microscopy; Biomembranes; Corrugated surfaces; Etching; Giant magnetoresistance; Image analysis; Magnetic analysis; Magnetic multilayers; Nonhomogeneous media; Scanning electron microscopy; GMR; Giant magnetoresistance; multilayers;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2004.830419
  • Filename
    1325470