Hostname: page-component-76fb5796d-vfjqv Total loading time: 0 Render date: 2024-04-26T05:58:45.511Z Has data issue: false hasContentIssue false

Point Defects, Recovery Kinetics and Ordering in Irradiated Bulk Metallic Glasses

Published online by Cambridge University Press:  01 February 2011

Yuri Petrusenko
Affiliation:
petrusenko@kipt.kharkov.ua, National Science Center - Kharkov Institute of Physics and Technology, Institute of Solid State Physics, Material Science and Technologies, 1 Akademichna Str., 61108 Kharkov, Ukraine, Kharkov, 61108, Ukraine, +38 057 335 44 44 / +38 050 230 28 32
Alexander Bakai
Affiliation:
bakai@kipt.kharkov.ua, National Science Center "Kharkov Institute of Physics & Technology", Kharkov, 61108, Ukraine
Valeriy Borysenko
Affiliation:
vborysenko@kipt.kharkov.ua, National Science Center "Kharkov Institute of Physics & Technology", Kharkov, 61108, Ukraine
Dmitro Barankov
Affiliation:
barankovd@kipt.kharkov.ua, National Science Center "Kharkov Institute of Physics & Technology", Kharkov, 61108, Ukraine
Oleksandr Astakhov
Affiliation:
o.astakhov@fz-juelich.de, National Science Center "Kharkov Institute of Physics & Technology", Kharkov, 61108, Ukraine
Michael-Peter Macht
Affiliation:
macht@hmi.de, Hahn-Meitner-Institut Berlin, Berlin, D-14109, Germany
Get access

Abstract

The problem of structural properties and structural defects of amorphous solids is still of vital importance. To make clear whether stable point defects exist in metallic glasses (MGs) or not, we have studied the accumulation and recovery kinetics of radiation defects in ZrTiCuNiBe and ZrTiCuNiAl bulk MGs irradiated with 2.5 MeV electrons at T ∼ 80 K. The electrical resistance measurements of the irradiated samples were performed. The recovery spectrum of irradiation-induced electrical resistance was measured for the 85–300 K temperature range. The most important result of the recovery experiments is that they clearly show the annealing stages for the irradiated samples. Two annealing peaks located at T∼150 K and T∼225 K are resolved for ZrTiCuNiBe glass. Similar peaks are also revealed for ZrTiCuNiAl. It can be concluded from the data that the defect mobility is a thermally activated process, and that the activation energy is not as high as that for vacancies in crystalline alloys. Thus, the data obtained testify in favor of the structure with “perfect” local ordering of atoms. It should be noted that this property is basic in the formulation of the polycluster model of amorphous solids.

Type
Research Article
Copyright
Copyright © Materials Research Society 2008

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

1. Bernal., J, Proc. Roy. Soc. A280, pp. 299322 (1964).Google Scholar
2. Topics in Appl. Phys. 46, Glassy, Metals I, Guentherodt, H.-J. and Beck, H., Eds. (Springer-Verlag, Heidelberg-Berlin, 1981).Google Scholar
3. Topics in Appl. Phys. 53, Metals, Glassy II, Guentherodt, H.-J. and Beck, H., Eds. (Springer-Verlag, Heidelberg-Berlin, 1983).Google Scholar
4. Chaudhary., P, Spapen., S, Steinhard, P.J., In: Topics in Appl. Phys. 53, Metals, Glassy II, Guentherodt, H.-J. and Beck, H., Eds. (Springer-Verlag, Heidelberg-Berlin, 1983).Google Scholar
5. Lebedev, A.A., Trudy Gos. Opt. Inst. 2, #10, 1(1921).Google Scholar
6. Lebedev, A.A., Porai-Koshits, E.A., Izv. Sektora Fiz.-Khim. Analiza 16, 51 (1948).Google Scholar
7. Gaskell, P.H., In: Topics in Appl. Phys. 53, Metals, Glassy II, Guentherodt, H.-J. and Beck, H., Eds. (Springer-Verlag, Heidelberg-Berlin, 1983).Google Scholar
8. Bakai, A.S., Polycluster amorphous solids. Moscow: Ehnergoatomizdat, (1987) (In Russian).Google Scholar
9. Bakai, A.S., in: Topics in Appl. Phys. 72, Metals, Glassy III, Beck, H., Guentherodt, H.-J. (eds). (Springer, Heidelberg, 1994) pp. 208255.Google Scholar
10. Bakai, A.S., Structure and radiation damage of metallic glasses, Uspekhi Fiziki Metallov, 3, 87106 (2002).Google Scholar
11. Wiedersich, H., Okamoto., P, Lam., N, J. Nucl. Mater., v. 83, pp. 98-108 (1979).Google Scholar
12. Larikov, L.N., Isaychev, V.I.. Diffusion in metals and alloys. Reference book. Naukova Dumka, Kiev (1987) 509 p. (In Russian).Google Scholar