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Optimized reactor for Pb(Zr,Ti)O3 precursor synthesis*

Published online by Cambridge University Press:  15 December 2000

D. M. Pennanéac'h*
Affiliation:
Systèmes Mésoélectroniques-Capteurs, LESiR (ESA 8029) and PPSM (UMR 8531), ENS de Cachan, 61 avenue of Président Wilson, 94235 Cachan, France
S. Poujouly
Affiliation:
Systèmes Mésoélectroniques-Capteurs, LESiR (ESA 8029) and PPSM (UMR 8531), ENS de Cachan, 61 avenue of Président Wilson, 94235 Cachan, France
D. Placko
Affiliation:
Systèmes Mésoélectroniques-Capteurs, LESiR (ESA 8029) and PPSM (UMR 8531), ENS de Cachan, 61 avenue of Président Wilson, 94235 Cachan, France
P. Gaucher
Affiliation:
Thomson-CSF, Laboratoire Central de Recherche, Domaine de Corbeville, 91404 Orsay Cedex, France
S. P. Faure
Affiliation:
Systèmes Mésoélectroniques-Capteurs, LESiR (ESA 8029) and PPSM (UMR 8531), ENS de Cachan, 61 avenue of Président Wilson, 94235 Cachan, France
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Abstract

Synthesis of PZT solutions for thin films applications are realised either by sol-gel methods using reactive precursors or by MOD (metallorganic deposition) methods using heavy and/or hydrophobic precursors (applications: piezo or pyroelectric devices, integrated capacitors). Understanding these processes is difficult because of the complex chemistry of alkoxides. A specific MOD solution to produce PZT films is taken as an example to study the most important parameters influencing the behaviour of the final solution during deposition (spin coating) and subsequent thermal treatments. In this context a pilot reactor was developed in order to control and to measure this main parameters with the objective of a process optimization.

Keywords

Type
Research Article
Copyright
© EDP Sciences, 2000

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Footnotes

*

This subject was presented at C2i98 at Cachan the November 18-19, 1998.

References

Vest, R.W., Zhu, W., Ferroelectrics 119, 61 (1991). CrossRef
Li, J.-F., Viehland, D.D., Tani, T., Lakeman, C.D.E., Payne, D.A., J. Appl. Phys. 75, 442 (1994). CrossRef
Gaucher, P., Eichner, D., Hector, J., Von, M.W., J. Phys. III France 8, 235 (1998).
Wu, A., Miranda Salvado, I.M., Vilarinho, P.M., Baptista, J.L., J. Am. Ceram. Soc. 81, 2640 (1998). CrossRef
Budd, K.D., Dey, S.K., Payne, D.A., Br. Ceram. Proc. 36, 107 (1985).
Fukushima, J., Kodaira, K., Matsushita, T., J. Mater. Sci. 19, 595 (1984). CrossRef
Lakeman, C.D.E., Payne, D.A., J. Am. Soc. 75, 3091 (1992).
Lipeles, R.A., Coleman, D.J., Leung, M.S., Mat. Res. Soc. Symp. Proc. 73, 665 (1986). CrossRef
Schwarz, R.W., Reichert, T.L., Clem, P.G., Dimos, D., Liu, D., Integrated Ferroelectrics 18, 275 (1994). CrossRef
I. Valente, S.P. Faure, P. Gaucher, J. Livage, Brevet Français n $^{\circ}$ 89-15174, Thomson-CSF.
Kezuka, K., Hayashi, Y., Yamaguchi, T., J. Am. Soc. 72, 1660 (1990).
S.P. Faure, O. Chaux, P. Gaucher, EMIF2 29-30 September 1997, J. Phys. IV Colloq. France 8, Pr9-69 (1998).
D. Pennanéac'h, S.P. Faure (to be published).
M. In, Ph.D. thesis, University of Paris VI, France, 1994.