Optimization of magnetostriction, coercive field and magnetic transition temperature in nanocrystalline TbDyFe plus Zr Nb multilayers

被引:22
作者
Fischer, SF [1 ]
Kelsch, M [1 ]
Kronmüller, H [1 ]
机构
[1] Max Planck Inst Met Forsch, D-70569 Stuttgart, Germany
关键词
alloys; giant magnetostriction; multilayers; -; nanocrystalline; thin films;
D O I
10.1016/S0304-8853(99)00321-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The magnetostrictive properties of TbDyFe/Nb multilayers containing 2 at % Zr as an additive have been investigated after different annealing treatments for the (Terfenol-D near) composition of [Tb0.27Dy0.73](0.27)Fe-0.73. The multilayer structure has been produced by ion-beam sputtering on a sapphire substrate. After 10 min annealing of the multilayers at temperatures from 873 to 973 K the parallel magnetostriction increased from lambda(parallel to)(0.8 T) = 265 to 520 ppm accompanied ky an increase of the magnetic phase transition temperature from T-C = 333 to 592 K, while the increase of the coercive fields from mu(0)H(c) < 5 to 75 mT lies distinctively below 100 mT. These properties are suitable for applications of giant magnetostrictive films in microsystems where values of lambda > 500 ppm, T-C > 500 K and mu(0)H(c) much less than 100 mT are required. Establishing a nanocrystalline microstructure with grain sizes d < d(c) similar to 15 nm (d(c) is the critical grain diameter) smaller than the exchange length is essential for the combination of intrinsic magnetic properties (increased lambda and T-C) with soft magnetic properties (mu(0)H(c) of a few mT) as typical for an amorphous microstructure. It is shown by microstructural XRD and TEM investigations that such a nanocrystalline microstructure can be realized by a suitable heat treatment of TbDyFe + Zr/Nb multilayers. Introducing Nb spacer layers effectively reduces grain growth for certain annealing temperatures while Zr is assumed to play a dominant role in forming nucleation centers of nanograins. In combination, both effects can be well used to optimize the magnetostrictive layer properties. (C) 1999 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:545 / 554
页数:10
相关论文
共 16 条
  • [1] Clark A. E., 1980, Ferromagnetic materials. A handbook on the properties of magnetically ordered substances, vol.1, P531, DOI 10.1016/S1567-2719(80)01010-4
  • [2] Clark A. E., 1974, AIP C P, V18, P1015, DOI DOI 10.1063/1.2947192
  • [3] CLARK AE, 1972, AIP C P, V10, P749
  • [4] MAGNETOSTRICTION AND INTERNAL-STRESSES IN THIN-FILMS - THE CANTILEVER METHOD REVISITED
    DELACHEISSERIE, EDT
    PEUZIN, JC
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1994, 136 (1-2) : 189 - 196
  • [5] DELACHEISSERIE EDT, 1993, MAGNETOSTRICTION
  • [6] FISCHER SF, 1998, P 15 INT WORKSH RAR, V15, P1087
  • [7] FLIK G, 1994, P ACT 94 BREM GERM, P232
  • [8] GRAIN-SIZE DEPENDENCE OF COERCIVITY AND PERMEABILITY IN NANOCRYSTALLINE FERROMAGNETS
    HERZER, G
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 1990, 26 (05) : 1397 - 1402
  • [9] Development of Terfenol-D transducer material
    Lindgren, EA
    Haroush, S
    Poret, JC
    Mazzatesta, AD
    Rosen, M
    Wun-Fogle, M
    Restorff, JB
    Clark, AE
    Lindberg, JF
    [J]. JOURNAL OF APPLIED PHYSICS, 1998, 83 (11) : 7282 - 7284
  • [10] Magnetostrictive properties of sputtered binary Tb-Fe and pseudo-binary (Tb-Dy)-Fe alloy films
    Miyazaki, T
    Saito, T
    Fujino, Y
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1997, 171 (03) : 320 - 328