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Negative-U Properties for Point Defects in Silicon*

Published online by Cambridge University Press:  15 February 2011

G. D. Watkins*
Affiliation:
Department of Physics and Sherman Fairchild Laboratory, Lehigh University, Bethlehem, Pennsylvania 18015
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Abstract

A defect has negative-U properties if it can trap two electrons (or holes) with the second bound more strongly than the first. It is as if there were a net attraction between the two carriers (negative Hubbard correlation energy U) at the defect, and the defect energy levels in the gap are therefore inverted from their normal order. Experimental evidence is presented that interstitial boron and the lattice vacancy, both common simple point defects produced by electron irradiation of silicon, have this unusual property. These defects represent the first and only concrete examples of negative-U centers in any material and serve as models for an understanding of the phenomenon.

Type
Research Article
Copyright
Copyright © Materials Research Society 1981

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Footnotes

*

Research supported by the U.S. Navy, ONR Electronics and Solid State Sciences Program, Contract No. N00014-76-C-1097.

References

REFERENCES

1. Hubbard, J., Proc. Roy. Soc. A 276, 238 (1963).Google Scholar
2. Cooper, L. N., Phys. Rev. 104, 1189 (1956).CrossRefGoogle Scholar
3. Anderson, P. W., Phys. Rev. Lett. 34, 953 (1975).CrossRefGoogle Scholar
4. Street, R. A. and Mott, N. F., Phys. Rev. Lett. 35, 1293 (1975).CrossRefGoogle Scholar
5. Kastner, Marc, Adler, David and Fritzsche, H., Phys. Rev. Lett. 43, 1504 (1975).Google Scholar
6. Watkins, G. D. and Troxell, J. R., Phys. Rev. Lett. 44, 593 (1980).Google Scholar
7. Troxell, J. R. and Watkins, G. D., Phys. Rev. B 22, 921 (1980).CrossRefGoogle Scholar
8. Watkins, G. D., Chatterjee, A. P. and Harris, R. D. in: Proceedings of the llth International Conference on Defects and Radiation Effects in Semiconductors, Oiso, Japan 1980 (Inst. of Phys., London, in press).Google Scholar
9. Baraff, G. A., Kane, E. O. and Schluter, M., Phys. Rev. Lett. 37, 1504 (1979).Google Scholar
10. Watkins, G. D., Phys. Rev. B 12, 5824 (1975).Google Scholar
11. Watkins, G. D. in: Lattice Defects in Semiconductors 1974, Huntley, F. A., ed. (Inst. of Phys. Conference Ser. 23, London 1975) p. 1.Google Scholar
12. Kimerling, L. C. in: Radiation Effects in Semiconductors, Urli, N. B., ed. (Inst. of Phys. Conference Ser. 31, London 1977) p. 221.Google Scholar
13. Watkins, G. D., Troxell, J. R. and Chatterjee, A. P. in: Defects and Radiation Effects in Semiconductors 1978, Albany, J. H., ed. (Inst. of Phys. conf. ser. 46, London 1979) p. 16.Google Scholar
14. Troxell, J. R., Ph.D. Thesis, Lehigh University 1979 (unpublished).Google Scholar
15. White, C. T. and Ngai, K. L., Phys. Rev. Lett. 41, 885 (1978).Google Scholar
16. Simanek, E., Solid State Comm. 32, 731 (1979).Google Scholar
17. Ting, C. S., Talwar, D. N. and Ngai, K. L., Phys. Rev. Lett. 45, 1213 (1980).Google Scholar