• DocumentCode
    941324
  • Title

    Giant magnetoresistance, microstructure, and application characteristics of amorphous CoNbZr-based pseudo-spin valves

  • Author

    Wen, Qi-Ye ; Zhang, Huai-Wu ; Tang, Xiao-Li ; Zhong, Zhi-Yong

  • Author_Institution
    Sch. of Microelectron. & Solid-State Electron., Univ. of Electron. Sci. & Technol. of China, Chengdu
  • Volume
    42
  • Issue
    6
  • fYear
    2006
  • fDate
    6/1/2006 12:00:00 AM
  • Firstpage
    1634
  • Lastpage
    1637
  • Abstract
    We have fabricated pseudo-spin-valve (PSV) multilayers with amorphous CoNbZr alloy as a soft magnetic layer and a buffer layer by magnetron sputtering. We investigated the multilayers´ giant magnetoresistance (GMR), microstructure,thermal annealing effects, and application characteristics. Our results show that the film microstructure, consequently the magnetostatic coupling effect and the magnetization reversal process, strongly depends on the CoNbZr thickness. We observed antiparallel magnetization alignments in the samples with a 2-4nm CoNbZr layer and a measured maximum GMR ratio of 6.5%. The PSV with 4 nm CoNbZr has a superior thermal stability to 400 degC as a result of the dense and homogeneous Cu spacer. After patterning with a 6 mumtimes1 mum elliptic stripe, the structure forms a single domain. The dynamic GMR behavior under a 10 kHz sinusoidal magnetic field indicates the patterned stripe has a linear and stable GMR response. We therefore believe that PSVs with amorphous CoNbZr have good potential for spintronic devices
  • Keywords
    amorphous magnetic materials; annealing; cobalt alloys; giant magnetoresistance; magnetic thin films; magnetisation reversal; magnetoelectronics; micromagnetics; niobium alloys; spin valves; sputtering; zirconium alloys; 1 to 6 micron; 2 to 4 nm; 400 C; CoNbZr; amorphous magnetic films; antiparallel magnetization alignments; giant magnetoresistance; magnetization reversal; magnetostatic coupling effect; magnetron sputtering; pseudo-spin-valve multilayers; spintronic devices; thermal annealing effects; Amorphous magnetic materials; Amorphous materials; Buffer layers; Giant magnetoresistance; Magnetic multilayers; Magnetostatics; Microstructure; Soft magnetic materials; Sputtering; Valves; Amorphous magnetic films; giant magnetoresistance; pseudo-spin-valve;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2006.871898
  • Filename
    1634471