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Ion Induced Morphological Instabilities in Ge*

Published online by Cambridge University Press:  25 February 2011

B. R. Appleton*
Affiliation:
Solid State Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831
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Abstract

The characteristics of an anomalous morphological instability initiated in amorphous Ge by heavy ion bombardment are reviewed and a model based on defect-production/defect-interactions is proposed.

Type
Research Article
Copyright
Copyright © Materials Research Society 1984

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Footnotes

*

Research sponsored by the Division of Materials Sciences, U.S. Department of Energy under contract W–7405–eng–26 with Union Carbide Corporation.

References

REFERENCES

1. Appleton, B. R., Holland, O. W., Narayan, J., Schow III, O. E., Williams, J. S., Short, K. T., and Lawson, E. M., Appl. Phys. Lett. 41, 711 (1982).Google Scholar
2. Wilson, I. H., J. Appl. Phys. 53, 1698 (1982).Google Scholar
3. Holland, O. W., Appleton, B. R., and Narayan, J., J. Appl. Phys. 54, 2295 (1983).Google Scholar
4. Lawson, E. M., Short, K. T., Williams, J. S., Appleton, B. R., Holland, O. W., and Schow III, O. E., Nucl. Inst. Methods 209/210, 303 (1983).Google Scholar
5. Holland, O. W., Narayan, J., White, C. W., and Appleton, B. R., p. 297 in Laser-Solid Interactions and Transient Thermal Processing of Materials, ed. by Brown, W. L., Narayan, J., and Lemons, R. A., North Holland, New York, 1983.Google Scholar
6. Lawson, E. M., Williams, J. S., Chivers, D. J., Short, K. T., and Appleton, B. R., Australian Atomic Energy Commission Report AAEC/E573.Google Scholar
7. Williams, J. S., Chivers, D. J., Elliman, R. G., Johnson, S. T., Lawson, E. M., Mitchell, I. V., Orrman-Rossiter, K. G., Pogany, A. P., and Short, K. T., these proceedings.Google Scholar
8. Phase Transformation During Irradiation, ed. by Nolfi, F. V., Applied Science Publishers, New York, 1983 and references therein.Google Scholar
9. Campisano, S. U., Grimaldi, M. G., Baeri, P., Foti, G., and Rimini, E., Appl. Phys. Lett. 22, 201 (1980).Google Scholar
10. Johansson, N.G.E., Sigurd, D., and Bjorkqvist, K., Radia. Eff. 6, 257 (1970).Google Scholar
11. Maksimov, S. K., Egorov, V. L., Kryuk, V. V., Piskunov, D. I., Pitirimova, E. A., and Veselov, V. F., Phys. Stat. Sol. (a) 73, K283 (1982).Google Scholar
12. Martain, G., p. 1084 in Fundamental Aspects of Radiation Damage in Metals, CONF–751006–P2, U.S. Department of Commerce, ed. by Robinson, M. T. and Young, F. W., 1975.Google Scholar
12a. Also, Phil. Mag. 32, 615 (1975).Google Scholar
13. Bourgoin, J. and Mollot, F., Phys. Stat. Solidi 43, 343 (1981).Google Scholar
13a. Callcott, T. A. and MacKay, J. W., Phys. Rev. 161, 698 (1967).Google Scholar
14. Stoneham, A. M., J. Phys. F 1, 778 (1971) for example.Google Scholar