• DocumentCode
    3560092
  • Title

    Domain Wall Propagation in Nearly Zero Magnetostrictive Amorphous Microwires

  • Author

    Chiriac, Horia ; Ovari, Tibor-Adrian ?“v??ri ; Tibu, Mihai

  • Author_Institution
    Nat. Inst. of R&D for Tech. Phys., Iasi
  • Volume
    44
  • Issue
    11
  • fYear
    2008
  • Firstpage
    3931
  • Lastpage
    3933
  • Abstract
    Results on the investigation of the propagating 180deg domain walls in bistable amorphous glass-coated microwires with nearly zero magnetostriction are reported for the first time. As-cast glass-coated microwires are bistable only if their metallic nucleus diameter is larger than 20 mum. Glass removal induces bistability in microwires with metallic nucleus diameters below 20 mum. Nearly zero magnetostrictive glass-coated microwires display larger domain wall velocities and mobilities as compared to positive magnetostrictive microwires. Samples that become bistable after glass removal display smaller values of the wall mobility as compared to as-cast bistable microwires. Mobility can be increased by annealing. The experimental results have been explained based on the damping mechanisms of the domain wall motion, specifically on the spin relaxation damping, whose coefficient is proportional to the anisotropy constant from the microwire´s inner core. Stress relief determined by glass removal and annealing have been considered. The results are important for future applications of nearly zero magnetostrictive microwires in spintronic devices.
  • Keywords
    Barkhausen effect; amorphous magnetic materials; annealing; damping; magnetic anisotropy; magnetic domain walls; magnetic relaxation; magnetoelectric effects; magnetostriction; Barkhausen effect; annealing; bistable amorphous glass-coated microwires; domain wall motion; magnetic anisotropy; magnetic domain wall propagation; magnetostrictive amorphous microwires; metallic nucleus diameter; spin relaxation damping mechanisms; spintronic devices; Amorphous glass-coated microwires; domain wall propagation; large Barkhausen effect; magnetic anisotropy;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2008.2001326
  • Filename
    4717430