Hostname: page-component-7bb8b95d7b-495rp Total loading time: 0 Render date: 2024-09-26T23:54:44.311Z Has data issue: false hasContentIssue false

Rf-Mössbauer Study of the Compositional Dependence of Short Range Order in Amorphous Fe-M-B-Cu Alloys

Published online by Cambridge University Press:  21 February 2011

M. Kopcewicz
Affiliation:
Institute of Electronic Materials Technology, Wólczyń, PL 01-919 Warsaw, Poland
A. Grabias
Affiliation:
Institute of Electronic Materials Technology, Wólczyń, PL 01-919 Warsaw, Poland
B. Idzikowski
Affiliation:
Institute of Molecular Physics, Polish Academy of Sciences, M. Smoluchowskiego 17, PL 60-179 Poznań, Poland
Get access

Abstract

The radio-frequency collapse of the magnetic hyperfine structure in the Mössbauer spectra is employed to study directly the short range order in amorphous Fe-M-B-Cu (M: Zr, Ti, Ta, Nb, Mo) alloys via the electric quadrupole hyperfine interaction. The shape of the quadrupole splitting distributions obtained from the rf collapsed spectra strongly suggests the existence of two short range orders with a high and low local content of iron. The decrease of boron content in FeZrB alloys leads to a more symmetric local structure experienced by Fe atoms.

Type
Research Article
Copyright
Copyright © Materials Research Society 1999

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

1. Kopcewicz, M., Wagner, H.G., Gonser, U., Hyperfine Inter. 27, 413 (1986).Google Scholar
2. Kopcewicz, M., Wagner, H. G., Gonser, U., J. Phys. F16, 929 (1986).Google Scholar
3. Kopcewicz, M., ldzikowski, B., Wrzeciono, A., J. Magn. Magn. Mater. 125, 290 (1993).Google Scholar
4. Pfeiffer, L., “Mössbauer Effect Methodology”, Vol. 7; ed. Gruvermann, I.J., Plenum Press: New York, 1972, p. 263.Google Scholar
5. Kopcewicz, M., Struct. Chem. 2, 313 (1991).Google Scholar
6. Kopcewicz, M., Grabias, A., Nowicki, P., Williamson, D.L., J. Appl. Phys. 79, 993 (1996).Google Scholar
7. Hesse, J., Rübartsch, A., J. Phys. E 7, 526 (1974).Google Scholar
8. LeCaer, G., Dubois, J.M., J. Phys. E 12, 1083 (1979).Google Scholar
9. Brand, R.A., Lauer, J., Herlach, D.M., J. Phys. F 13, 675 (1983).Google Scholar