Title :
Temperature dependence of piezoelectric properties for textured SBN ceramics
Author :
Kimura, Masahiko ; Ogawa, Hirozumi ; Kuroda, Daisuke ; Sawada, Takuya ; Higuchi, Yukio ; Takagi, Hiroshi ; Sakabe, Yukio
Author_Institution :
Murata Manuf. Co, Ltd., Kyoto
fDate :
12/1/2007 12:00:00 AM
Abstract :
Temperature dependences of piezoelectric properties were studied for (001) textured ceramics of bismuth layer-structured ferroelectrics, SrBi2Nb2O9 (SBN). The textured ceramics with varied orientation degrees were fabricated by templated, grain-growth method, and the temperature dependences of resonance frequency were estimated. Excellent temperature stability of resonance frequency was obtained for the 76% textured ceramics. The resonance frequency of the 76% textured specimens varied almost linearly over a wide temperature range. Therefore, the variation was slight, even in a high temperature region above 150degC. Temperature stability of a quartz crystal oscillator is generally higher than that of a ceramic resonator around room temperature. The variation of resonance frequency for the 76% textured SrBi2Nb2O9 was larger than that of oscillation frequency for a typical quartz oscillator below 150degC also in this study. However, the variation of the textured SrBi2Nb2O9 was smaller than that of the quartz oscillator over a wide temperature range from -50 to 250degC. Therefore, textured SrBi2Nb2O9 ceramics is a major candidate material for the resonators used within a wide temperature range.
Keywords :
bismuth compounds; crystal oscillators; dielectric resonance; dielectric resonator oscillators; ferroelectric ceramics; piezoelectricity; strontium compounds; (001) textured ceramics; SrBi2Nb2O9; bismuth layer-structured ferroelectrics; ceramic resonator; grain growth; oscillation frequency; piezoelectric properties; quartz crystal oscillator; resonance frequency; temperature -50 degC to 250 degC; temperature stability; Bismuth; Ceramics; Frequency estimation; Niobium; Oscillators; Resonance; Resonant frequency; Stability; Temperature dependence; Temperature distribution; Acoustics; Ceramics; Electric Impedance; Equipment Design; Equipment Failure Analysis; Materials Testing; Reproducibility of Results; Sensitivity and Specificity; Surface Properties; Temperature; Transducers;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2007.564