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Dynamical Behavior of the Subsurface Region in Alloys Under Ion Bombardment at High Temperatures

Published online by Cambridge University Press:  15 February 2011

N. Q. Lam
Affiliation:
Materials Science Division, Argonne National Laboratory, Argonne, IL 60439
H. Wiedersich
Affiliation:
Materials Science Division, Argonne National Laboratory, Argonne, IL 60439
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Abstract

Modifications of subsurface alloy composition by bombardment with ions of several keV energy were investigated theoretically, using a phenomenological model which includes the effects of various processes, such as preferential sputtering, displacement mixing, Gibbsian adsorption, radiation-enhanced diffusion, and radiationinduced segregation. The nonuniformity of damage rates, resulting from slow-down of the incoming ions, was also taken into account. The alloy composition evolution in time and space was calculated numerically for different temperatures, using concentrated Ni-Cu as a model alloy system. A good qualitative agreement between the present model calculations and recent experimental measurements was obtained.

Type
Research Article
Copyright
Copyright © Materials Research Society 1982

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Footnotes

*

Work supported by the U. S. Department of Energy.

References

REFERENCES

1.Shimizu, H., Ono, M., and Nakayama, K., J. Appl. Phys. 46, 460 (1975).Google Scholar
2.Rehn, L. E., Danyluk, S., and Wiedersich, H., Phys. Rev. Lett. 43, 1764 (1979).Google Scholar
3.Rehn, L. E. and Wiedersich, H., Thin Solid Films 73, 139 (1980).Google Scholar
4.Shikata, M. and Shimizu, R., Surface Sci. 97, L363 (1980).Google Scholar
5.Swartzfager, D. G., Ziemecki, S. B., and Kelley, M. J., J. Vac. Sci. Technol. 19, 185 (1981).Google Scholar
6.Lam, N. Q., Leaf, G. K., and Wiedersich, H., J. Nucl. Mater. 88, 289 (1980).Google Scholar
7.Lam, N. Q. and Wiedersich, H., Proc. Second Topical Meeting on Fusion Reactor Materials, August 9–12, 1981, Seattle, WA, to be published.Google Scholar
8.Kelly, R. in: Symposium on Sputtering, Varga, P., Betz, G., Vieböck, F. P. eds. (Institut fUr Allgemeine Physik, Vienna 1980) p. 390.Google Scholar
9.Andersen, H. H., Proc. Tenth Yugoslavian Summer School and Symposium on Ionized Gases, August 25–29, 1980, Dubrovnik, Yugoslavia, to be published.Google Scholar
10.Wiedersich, H., Okamoto, P. R., and Lam, N. Q., J. Nucl. Mater. 83, 98 (1979).Google Scholar
11.Berger, A. S., Ockers, S. T., and Siegel, R. W., J. Phys. F: Metal Physics 9, 1023 (1979).Google Scholar
12.Smedskjaer, L. C., Fluss, M. J., Legnini, D. G., Chason, M. K. and Siegel, R. W., J. Phys. F: Metal Physics 11, in press (1981).Google Scholar
13.Webber, P. R., Rojas, C. E., Dobson, P. J. and Chadwick, D., Surface Sci. 105, 20 (1981).Google Scholar