Application of Mössbauer spectroscopy in magnetism

被引:0
|
作者
Werner Keune
机构
[1] Universität Duisburg-Essen,Fakultät für Physik
[2] Max-Planck-Institut für Mikrostrukturphysik,undefined
来源
Hyperfine Interactions | 2012年 / 204卷
关键词
Mössbauer spectroscopy; CEMS; Nuclear resonance scattering (NRS); Magnetism; Interfaces; Thin films; Multilayers; Hyperfine field; Spin structure; Exchange spring magnets; Exchanged bias; Iron/gallium arsenide;
D O I
暂无
中图分类号
学科分类号
摘要
An overview is provided on our recent work that applies 57Fe Mössbauer spectroscopy to specific problems in nanomagnetism. 57Fe conversion electron Mössbauer spectroscopy (CEMS) in conjunction with the 57Fe probe layer technique as well as 57Fe nuclear resonant scattering (NRS) were employed for the study of various nanoscale layered systems: (i) metastable fct-Fe; a strongly enhanced hyperfine magnetic field Bhf of ∼39 T at 25 K was observed in ultrahigh vacuum (UHV) on uncoated three-monolayers thick epitaxial face-centered tetragonal (fct) 57Fe(110) ultrathin films grown by molecular-beam epitaxy (MBE) on vicinal Pd(110) substrates; this indicates the presence of enhanced Fe local moments, μFe, as predicted theoretically; (ii) Fe spin structure; by applying magnetic fields, the Fe spin structure during magnetization reversal in layered (Sm–Co)/Fe exchange spring magnets and in exchange-biased Fe/MnF2 bilayers was proven to be non-collinear and depth-dependent; (iii) ferromagnet/semiconductor interfaces for electrical spin injection; CEMS was used as a diagnostic tool for the investigation of magnetism at the buried interface of Fe electrical contacts on the clean surface of GaAs(001) and GaAs(001)-based spin light-emitting diodes (spin LED) with in-plane or out-of-plane Fe spin orientation; the measured rather large average hyperfine field of ∼27 T at 295 K and the distribution of hyperfine magnetic fields, P(Bhf), provide evidence for the absence of magnetically “dead” layers and the existence of relatively large Fe moments (μFe ∼ 1.8 μB) at the ferromagnet/semiconductor interface. - Finally, a short outlook is given for potential applications of Mössbauer spectroscopy on topical subjects of nanomagnetism/spintronics.
引用
收藏
页码:13 / 45
页数:32
相关论文
共 50 条
  • [41] Application of Mössbauer spectroscopy to the study of tannins inhibition of iron and steel corrosion
    Juan A. Jaén
    J. De Obaldía
    M. V. Rodríguez
    Hyperfine Interactions, 2011, 202 : 25 - 38
  • [42] On the possibility of application of superconducting tunnel-junction detectors in Mössbauer spectroscopy
    Kozin M.G.
    Romashkina I.L.
    Sergeev S.A.
    Nefedov L.V.
    Koshelets V.P.
    Filippenko L.V.
    Bulletin of the Russian Academy of Sciences: Physics, 2007, 71 (9) : 1302 - 1304
  • [43] MSSBAUER STUDY OF MAGNETISM AND CONTENT OF KRASNOZEM MAGNETIC MINERALS
    尧德中
    俞劲炎
    刘榜华
    Chinese Science Bulletin, 1990, (18) : 1539 - 1541
  • [44] Mössbauer Spectroscopy in the Geosciences: Highlights and Perspectives
    Catherine A. McCammon
    Hyperfine Interactions, 2002, 144-145 : 289 - 296
  • [45] The use of Mössbauer spectroscopy in environmental research
    F. B. Waanders
    Luis F. O. Silva
    Binoy K. Saikia
    Hyperfine Interactions, 2017, 238
  • [46] Advances in Mössbauer spectroscopy instrumental architecture
    Jakub Navařík
    Hyperfine Interactions, 2021, 242
  • [47] Mössbauer spectroscopy of 151 europium dicarboxylates
    C. I. Wynter
    D. H. Ryan
    Olga Trichtchenko
    C. J. Voyer
    D. E. Brown
    S. G. Sobel
    A. L. Haigney
    Leopold May
    B. R. Hillery
    N. S. Gajbhiye
    Hyperfine Interactions, 2008, 185 : 123 - 127
  • [48] Mössbauer Spectroscopy in South American Archaeology
    U. Wagner
    W. Häusler
    F. E. Wagner
    I. Shimada
    Hyperfine Interactions, 2003, 148-149 : 13 - 20
  • [49] Quantitative composition determination by Mössbauer spectroscopy
    B. Scott
    C. A. M. Brown
    R. A. Dunlap
    M. N. Obrovac
    MRS Communications, 2020, 10 : 123 - 128
  • [50] Mössbauer spectroscopy study of interfaces for spintronics
    R. Mantovan
    C. Wiemer
    A. Lamperti
    M. Georgieva
    M. Fanciulli
    A. Goikhman
    N. Barantsev
    Yu. Lebedinskii
    A. Zenkevich
    Hyperfine Interactions, 2009, 191 : 41 - 46