Title :
Temperature dependence of piezoelectric, elastic and dielectric coefficients at radial resonance of piezoceramics with an Aurivillius-type structure
Author :
Moure, Alberto ; Alemany, Carlos ; Pardo, Lorena
Author_Institution :
Inst. de Ciencia de Materiales de Madrid, CSIC, Madrid, Spain
fDate :
4/1/2005 12:00:00 AM
Abstract :
Aurivillius-type structure compounds are considered good candidates for piezoelectric materials at high temperature, due to their high ferro-paraelectric phase transition temperature. Despite this fact, very few papers have been published on the study of piezoelectric properties at the expected working temperatures. An iterative automatic method has been used in this work to characterize the piezoelectric, electromechanical, and elastic properties at radial resonance of thin ceramic disks with composition (SrBi/sub 2/Nb/sub 2/O/sub 9/)/sub 0.35/(Bi/sub 3/TiNbO/sub 9/)/sub 0.65/[SBN/BTN 35/65], from room temperature up to the ferro-paraelectric phase transition. Ceramics were prepared by sintering or by recrystallization after hot-pressing of mechanically activated precursors. By this new method, ceramics with controlled texture and microstructure are obtained. The influence of the processing route in the properties of the ceramics, over the whole temperature range of piezoelectric activity, is discussed. Values of d/sub 31/=2.1 pC/N and k/sub p/=2.9% at 500/spl deg/C are achieved.
Keywords :
bismuth compounds; crystal microstructure; crystal structure; elastic constants; ferroelectric Curie temperature; ferroelectric ceramics; ferroelectric transitions; hot pressing; piezoceramics; piezoelectricity; recrystallisation; recrystallisation texture; sintering; strontium compounds; titanium compounds; (SrBi/sub 2/Nb/sub 2/O/sub 9/)/sub 0.35/(Bi/sub 3/TiNbO/sub 9/)/sub 0.65/; 293 to 298 K; Aurivillius-type structure; dielectric coefficient; elastic coefficient; elastic properties; electromechanical properties; ferro-paraelectric phase transition temperature; hot-pressing; iterative automatic method; mechanically activated precursors; microstructure; piezoceramics; piezoelectric coefficient; piezoelectric properties; radial resonance; recrystallization; sintering; texture; thin ceramic disks; Bismuth; Ceramics; Dielectrics; Iterative methods; Microstructure; Niobium; Piezoelectric materials; Resonance; Temperature dependence; Temperature distribution;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2005.1428038