DocumentCode :
2859618
Title :
Characterizations of Nb2O5 modified PZT piezoelectric ceramics and feasibility study for acoustic sensor
Author :
Chen, Bing-Huei ; Wu, Long ; Wang, Jia-Bin ; Su, Ching-Chou ; Tai, C.C. ; Chen, J.F.
Author_Institution :
Dept. of Electr. Eng., Nan Jeon Inst. of Technol., Yen-Shui Township, Taiwan
fYear :
2010
fDate :
10-13 Dec. 2010
Firstpage :
217
Lastpage :
220
Abstract :
The aim of this report is to improve piezoelectric properties of Pb(Zr,Ti)O3 ceramics with a composition Zr/Ti=53/47 prepared by the conventional ceramic technology through a simple, yet effective method by addition of 1 mole% Nb-doped as a donor element. Replacement of Ti+4 by Nb+5 in such perovskite type solid solutions was accomplished by the creation of cation vacancies. The dependence of sintering effects on microstructure and ferroelectric characteristics were surveyed. From the analysis results, the PZT bulk ceramic grains distribution were found to be uniform, the sample was found to possess well-piezoelectric properties. Calcined at 850°C/2h and sintered at 1280°C/2h, the PZT ceramics had the minimum value of dielectric loss D=0.0151, mechanical quality factor Qm=105 and exhibited maximum electromechanical coupling factor kp=0.65. It was noted that the fundamental resonance frequency was around 200 KHz. Through the analyses of the study, we found an extremely good processing conditions and obtained well-performed piezoelectric properties and piezoelectric response suitable for piezoelectric applications, like resonator, actuator, sensor, filter et al. These in turn can serve as detecting devices with a wide range of was also evaluated. Finally, an acoustic sensor developing for non-destructive application would be our major issue for further investigation.
Keywords :
Q-factor; calcination; crystal microstructure; dielectric losses; ferroelectric ceramics; lead compounds; niobium compounds; piezoceramics; piezoelectricity; sintering; vacancies (crystal); PZT-Nb2O5; acoustic sensor; calcination; cation vacancies; ceramic grain distribution; conventional ceramic technology; dielectric loss; donor element; electromechanical coupling factor; ferroelectric properties; mechanical quality factor; microstructure; perovskite type solid solutions; piezoelectric ceramics; piezoelectric properties; resonance frequency; sintering; temperature 1280 degC; temperature 850 degC; time 2 h; Acoustic sensors; Ceramics; Couplings; Lead; Q factor; Resonant frequency; Temperature; Perovskite; acoustic sensor; electromechanical coupling factor; mechanical quality factor;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Piezoelectricity, Acoustic Waves and Device Applications (SPAWDA), 2010 Symposium on
Conference_Location :
Xiamen
Print_ISBN :
978-1-4244-9822-2
Type :
conf
DOI :
10.1109/SPAWDA.2010.5744307
Filename :
5744307
Link To Document :
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