Effect of initial stress/strain state on the L10 phase formation of FePt in FePt/Au/FePt trilayers

被引:0
|
作者
P. V. Makushko
M. Yu. Verbytska
M. N. Shamis
T. I. Verbytska
G. Beddies
N. Y. Safonova
M. Albrecht
Iu. M. Makogon
机构
[1] National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”,Department of Physics of Metals
[2] University of Augsburg,Institute of Physics
来源
Applied Nanoscience | 2020年 / 10卷
关键词
Stress state; Annealing; Ordering; L1; -FePt phase; Coercitivity;
D O I
暂无
中图分类号
学科分类号
摘要
The influence of the initial stress/strain state in FePt/Au/FePt thin films on the chemical L10-FePt formation after post-annealing is studied. It is shown that the level of stress/strain depends on the Au interlayer thickness revealing a correspondence in L10 ordering-onset temperature. Compressive strain present in the as-deposited films promotes lowering of the L10-FePt ordering temperature. A reduction of the onset temperature for ordering by 100 °C is observed in films having a 30-nm-thick intermediate Au layer compared to samples revealing lower compressive strain values. During annealing, the strain state caused by the difference in thermal expansion coefficients of FePt, Au, and substrate is relaxed during A1 → L10-FePt phase transformation. It is well known that the coercivity of FePt films rises with increasing fraction of the ordered L10-FePt phase. Furthermore, the insolubility of Au in the L10-FePt lattice results in Au diffusion predominantly along grain boundaries leading to magnetic FePt grain isolation, which in turn gives rise to enhanced coercivity. At an annealing temperature of 900 °C, coercivities as high as 27.5 kOe are achieved for FePt samples with an initial 30-nm-thick Au interlayer.
引用
收藏
页码:2775 / 2780
页数:5
相关论文
共 50 条
  • [1] Effect of initial stress/strain state on the L10phase formation of FePt in FePt/Au/FePt trilayers
    Makushko, P. V.
    Verbytska, M. Yu.
    Shamis, M. N.
    Verbytska, T. I.
    Beddies, G.
    Safonova, N. Y.
    Albrecht, M.
    Makogon, Iu. M.
    APPLIED NANOSCIENCE, 2020, 10 (08) : 2775 - 2780
  • [2] Effect of initial stress/strain state on formation of (001) preferred orientation in L10 FePt thin films
    Mei, J. K.
    Yuan, F. T.
    Liao, W. M.
    Yao, Y. D.
    Lin, H. M.
    Lee, H. Y.
    Hsu, J. H.
    JOURNAL OF APPLIED PHYSICS, 2011, 109 (07)
  • [3] Magnetization reversal of L10 FePt/Co/Fe trilayers
    Liao, J. L.
    Zhang, X. H.
    Ma, B.
    Zhang, Z. Z.
    Jin, Q. Y.
    JOURNAL OF APPLIED PHYSICS, 2011, 109 (07)
  • [4] Enhancement of L10 phase formation in FePt nanoparticles by nitrogenization
    Dmitrieva, O.
    Acet, M.
    Dumpich, G.
    Kaestner, J.
    Antoniak, C.
    Farle, M.
    Fauth, K.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2006, 39 (22) : 4741 - 4745
  • [5] Magnetic properties of L10 FePt and FePt:Ag nanocluster films
    Xu, YF
    Sun, ZG
    Qiang, Y
    Sellmyer, DJ
    JOURNAL OF APPLIED PHYSICS, 2003, 93 (10) : 8289 - 8291
  • [6] Influence of the Location of the Au Layer on the Formation of the Ordered L10 Phase in FePt-Au Films
    Verbytska, T. I.
    Kotenko, I. E.
    Natalenko, M. Yu.
    Graivoronska, K. O.
    Leonov, D. S.
    Barabash, M. Yu.
    Makogon, Iu. M.
    METALLOPHYSICS AND ADVANCED TECHNOLOGIES, 2025, 47 (02)
  • [7] The effect of additive Ag layers on the L10 FePt phase transformation
    Zhao, ZL
    Chen, JS
    Ding, J
    Inaba, K
    Wang, JP
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2004, 282 : 105 - 108
  • [8] Low-temperature ordering of L10 FePt phase in FePt thin film with AgCu underlayer
    Yu, Y. S.
    Li, Hai-Bo
    Li, W. L.
    Liu, Mei
    Fei, W. D.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2008, 320 (19) : L125 - L128
  • [9] GMR effect due to L10 FePt grains
    Zhang, ZG
    Kang, K
    Omoto, N
    Suzuki, T
    IEEE TRANSACTIONS ON MAGNETICS, 2003, 39 (05) : 2827 - 2829
  • [10] Formation of ordered L10-FePt phase in FePt–Ag thin films
    P. V. Makushko
    M. N. Shamis
    N. Y. Schmidt
    I. E. Kotenko
    S. Gulyas
    G. L. Katona
    T. I. Verbytska
    D. L. Beke
    M. Albrecht
    Iu M. Makogon
    Applied Nanoscience, 2020, 10 : 4809 - 4816