DocumentCode
1072723
Title
Anisotropy in domain engineered 0.92Pb(Zn/sub 1/3/Nb/sub 2/3/)O/sub 3/-0.08PbTiO/sub 3/ single crystal and analysis of its property fluctuations
Author
Zhang, Rui ; Jiang, Bei ; Jiang, Wenhua ; Cao, Wenwu
Author_Institution
Mater. Res. Lab., Pennsylvania State Univ., University Park, PA, USA
Volume
49
Issue
12
fYear
2002
Firstpage
1622
Lastpage
1627
Abstract
The orientation dependence of slowness and electromechanical coupling coefficients of 0.92Pb(Zn/sub 1/3/Nb/sub 2/3/)O/sub 3/-0.08PbTiO/sub 3/ (PZN-8%PT) domain engineered single crystal was analyzed based on the measured complete set of elastic, piezoelectric, and dielectric constants. There exist one quasi-longitudinal, one quasi-shear, and one pure shear wave in each of the [100]-[010], [010]-[001], and [001]-[110] planes. The slowness of the quasi-shear wave exhibits strong anisotropy in all three planes, and the coupling coefficient k/sub 33/ and k/sub 31/ reach their maximum in [001] and [110] directions of cubic axis, respectively. Because the composition of the PMN-8%PT system is very close to the morphotropic phase boundary, the extraordinary large piezoelectric coefficients d/sub 31/ and d/sub 33/, and high coupling coefficient k/sub 33/ are very sensitive to compositional variation. We have performed error analysis and proposed an improved characterization scheme to derive a complete data set with best consistency.
Keywords
anisotropic media; crystals; elastic constants; lead compounds; permittivity; piezoelectric materials; piezoelectricity; zinc compounds; 0.92Pb(Zn/sub 1/3/Nb/sub 2/3/)O/sub 3/-0.08PbTiO/sub 3/ single crystal; PMN-8%PT system; PbZnNbO/sub 3/-PbTiO/sub 3/; anisotropy; characterization scheme; compositional variation; coupling coefficient; dielectric constants; domain engineered single crystal; elastic constants; electromechanical coupling coefficients; error analysis; orientation dependence; piezoelectric constants; property fluctuations; pure shear wave; quasi-longitudinal wave; quasi-shear wave; Anisotropic magnetoresistance; Biomedical engineering; Crystals; Dielectric measurements; Error analysis; Fluctuations; Phase measurement; Resonance; Solids; Ultrasonic variables measurement; Anisotropy; Crystallization; Crystallography; Elasticity; Electric Capacitance; Electrochemistry; Lead; Materials Testing; Niobium; Oxides; Reproducibility of Results; Sensitivity and Specificity; Stress, Mechanical; Temperature; Titanium; Transducers; Zinc;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2002.1159841
Filename
1159841
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