Microstructure, structural defects, and piezoelectric response of bismuth titanate and bismuth titanium niobate solid solution with and 0.2 were investigated. Depending on and on the sintering temperature different microstructures and piezoelectric responses were observed. For a low content in and a high sintering temperature a coarse grain size is present, the number of structural defects within the grain is small, and there is a strong dependence of on the ac pressure. For higher content or for lower sintering temperature and the grain size is finer and a large number of structural defects is present within the grains. In particular, for high resolution transmission electron microscopy shows a high concentration of intergrowth defects which consist of layers inserted in the matrix in a more or less random way. In these samples, there is a very small dependence of on the ac pressure and the piezoelectric hysteresis is likewise very small. The relation between microstructure and piezoelectric properties is discussed and it is shown that there is a good correlation between the dependence of the piezoelectric response on the ac pressure and the defect density. The piezoelectric response may be related to the structural defects present within the grain.
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15 December 2000
Research Article|
December 15 2000
Microstructure, structural defects, and piezoelectric response of modified by Available to Purchase
Laurent Sagalowicz;
Laurent Sagalowicz
Ceramics Laboratory, Materials Department, Swiss Federal Institute of Technology-EPFL, 1015 Lausanne, Switzerland
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Fan Chu;
Fan Chu
Ceramics Laboratory, Materials Department, Swiss Federal Institute of Technology-EPFL, 1015 Lausanne, Switzerland
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Pedro Duran Martin;
Pedro Duran Martin
Ceramics Laboratory, Materials Department, Swiss Federal Institute of Technology-EPFL, 1015 Lausanne, Switzerland
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Dragan Damjanovic
Dragan Damjanovic
Ceramics Laboratory, Materials Department, Swiss Federal Institute of Technology-EPFL, 1015 Lausanne, Switzerland
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Laurent Sagalowicz
Fan Chu
Pedro Duran Martin
Dragan Damjanovic
Ceramics Laboratory, Materials Department, Swiss Federal Institute of Technology-EPFL, 1015 Lausanne, Switzerland
J. Appl. Phys. 88, 7258–7263 (2000)
Article history
Received:
July 31 2000
Accepted:
September 26 2000
Citation
Laurent Sagalowicz, Fan Chu, Pedro Duran Martin, Dragan Damjanovic; Microstructure, structural defects, and piezoelectric response of modified by . J. Appl. Phys. 15 December 2000; 88 (12): 7258–7263. https://doi.org/10.1063/1.1327285
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