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Ferroelectric Domain Boundaries Induced by Interface Mismatch Dislocations in BaTiO3/LaAlO3

Published online by Cambridge University Press:  10 February 2011

Z. L. Wang
Affiliation:
School of Materials Science and Engineering, Georgia Institute of Technology Atlanta, GA 30332–0245.
Z. R. Dai
Affiliation:
Beijing Laboratory of Electron Microscopy, Chinese Academy of Sciences, P.O. Box 2724, Beijing 100080, P. R. China.
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Abstract

Interface microstractures of BaTiO3/LaAlO3 grown by metal-organic chemical vapor deposition (MOCVD) are studied using high-resolution transmission electron microscopy (HRTEM). Interface dislocations in BaTiO3/LaAlO3 have been shown to be directly linked with the 90° domain boundaries in BaTiO3. This association is a result of strain relief due to a phase transformation on cooling from the growth temperature. The {100} surfaces of BaTiO3 are terminated with the Ba-O layer.

Type
Research Article
Copyright
Copyright © Materials Research Society 1997

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References

REFERENCES

1. Ousi-Benomar, W., Xue, S.S., Lessard, R.A., Singh, A., Wu, Z.L., and Kuo, P.K., J. Mater. Res. 9, 970 (1994).Google Scholar
2. Wang, Z.L., Lowndes, D.H., Christen, D.K., Kroeger, D.M., Klabunde, C.E. and Norton, D.P., Physica C, 252, 125(1995).Google Scholar
3. Chen, J., Wills, L.A., and Wessels, B.W., J. Electronic Mater. 22, 701 (1993).Google Scholar
4. Tanaka, M., and Honjo, G., J. Phys. Soc. Jpn. 19, 954 (1964).Google Scholar
5. Zhang, J., Gardiner, R.A., Kirlin, P.S., Boerstler, R.W. and Steinbeck, J., Appl. Phys. Lett. 61, 2884 (1992).Google Scholar
6. Dai, Z. R., Wang, Z. L., Duan, X.F. and Jiming Zhang, Appl. phys. Lett., 68, 3093 (1996).Google Scholar
7. Rhodes, R.G., Acta Cryatallogr. 4, 105 (1951).Google Scholar
8. Geller, S., and Bala, V.B., Acta Crystallogr. 9, 1019 (1956).Google Scholar
9. Bruinsma, R., and Zangwill, A., J. Phys. (Paris) 47, 2055 (1986).Google Scholar