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Transition Dynamics in Ferroelectrics with Ordered Nanoregions

Published online by Cambridge University Press:  10 February 2011

LG. Siny
Affiliation:
Department of Physics, University of Puerto Rico, San Juan, PR 00931–3343
R. S. Katiyar
Affiliation:
Department of Physics, University of Puerto Rico, San Juan, PR 00931–3343
S. G. Lushnikov
Affiliation:
Department of Physics, University of Puerto Rico, San Juan, PR 00931–3343
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Abstract

Raman scattering was used to study two model relaxor ferroelectrics, PbMg1/3Nb2/3O3 (PMN) with the 1:2 stoichiometric composition of Mg2+ and Nb5+ ions in the oxygen octahedrons and PbSc1/2Ta1/2O3 (PST) with the 1:1 stoichiometric composition of Sc3+ and Ta5+ ions. In spite of a different stoichiometric ratio the Raman spectra of both materials are consistent with the Fm3m space symmetry which implies the existence of similar 1:1 ordered clusters at least in nanoscale regions. The spectra show some anomalous features in the temperature range preceding a ferroelectric state, namely a broad central peak appears in PMN and a complex structure develops from the initially singlet line in PST. Those phenomena are considered as the dynamic features in course of evolution of the relaxors to a ferroelectric state. The preceding phase is characterized by a breakdown in the selection rules for Raman scattering, so some points in the Brillouin zone can contribute to the light scattering spectra. Comparing all available data, one can assume the determinant role of heterophase fluctuations in that process. The fluctuations in a special preceding phase are caused by a competition between two phases, namely between the ferroelectric phase and an additional nonpolar phase.

Type
Research Article
Copyright
Copyright © Materials Research Society 1997

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References

REFERENCES

1. Lines, M.E. and Glass, A.M., Principles and Applications of Ferroelectrics and Related Materials, Clarendon, Oxford, 1977 Google Scholar
2. Boulesteix, C., Varnier, F., Llebaria, A. and Husson, E., J. Sol. St. Chem. 108, 141 (1994).Google Scholar
3. Ye, Z.-G. and Schmid, H., Ferroelectrics 145, 83 (1993).Google Scholar
4. Siny, I.G., Lushnikov, S.G., Tu, C.-S. and Schmidt, V.H., Ferroelectrics 170, 197 (1995).Google Scholar
5. Siny, I.G., .Katiyar, R.S, Husson, E., Lushnikov, S.G. and Rogacheva, E.A., Bull. Am. Phys. Soc. 41, 720 (1996).Google Scholar
6. Balashova, E.V. and Tagantsev, A.K., Phys. Rev. B 48, 9979 (1993).Google Scholar
7. Xhonneux, P., Courtens, E. and Grimm, H., Phys. Rev. B 38, 9331 (1988).Google Scholar
8. Ridou, C., Rousseau, M., Daniel, P., Nouet, J. and Hennion, B., Ferroelectrics 124, 293 (1991).Google Scholar
9. Chu, F., Setter, N. and Tagantsev, A.K., J. Appl. Phys. 74, 5129 (1993).Google Scholar