DocumentCode :
1073649
Title :
Lead-free piezoelectric ceramic transducer in the donor-doped K1/2Na1/2NbO3 solid solution system
Author :
Hagh, N.M. ; Jadidian, B. ; Ashbahian, E. ; Safari, A.
Author_Institution :
State Univ. of New Jersey, Piscataway
Volume :
55
Issue :
1
fYear :
2008
fDate :
1/1/2008 12:00:00 AM
Firstpage :
214
Lastpage :
224
Abstract :
Lead-based piezoelectric ceramics are suitable materials for noninvasive applications of ultrasound in medicine. However, the embedded therapeutic and diagnostic procedures require the use of lead-free piezoelectric materials as active elements in transducers. With this goal in mind, we investigated the substitution of Ba2+ cations in a lead-free piezoelectric system of K1/2Na1/2NbO3-LiTaO3-LiSbO3 (KNN-LT-LS) with perovskite structure. The Ba2+ was added to the system as an A-site dopant in the range of 0-2 mol% in increments of 0.5 mol%. The addition of Ba2+ improved the piezoelectric charge coefficient, d33, and longitudinal coupling coefficient, k33. The composition with 1 mol% Ba2+ had 36% and 58% higher d33 and k33, respectively, than the undoped composition. It appeared that the addition of Ba+2 induced "soft" characteristics in this lead-free piezoelectric system. This was verified by the increase of remnant polarization along with the decline of coercive field. The Ba2+ behaved as a grain growth inhibitor and caused a drastic reduction in polarization level (~60%) when the grain size became smaller than ~1.5 mum. Incorporation of Ba2+ up to 1.5 mol% increased the bulk resistivity of the KNN-LT-LS system and then reduced it drastically at higher dopant concentrations. The electron-hole compensation model fit well with the results obtained in this study and verified the A-site substitution of donor-doped barium. KNN-LT-LS ceramics with 0 mol% and 1 mol% Ba2+ were used to fabricate single-element ultrasonic transducers resonating at 5.5 MHz. The -6 dB fractional bandwidth and -20 dB pulse length of the probe made of doped ceramic were 50% and 1.68 mus, respectively. This indicated that this system could be considered as a candidate for invasive and/or embedded medical ultrasound applicat- ons.
Keywords :
barium; biomedical ultrasonics; dielectric polarisation; doping profiles; electron-hole recombination; grain growth; grain size; lithium compounds; piezoceramics; piezoelectric transducers; potassium compounds; sodium compounds; ultrasonic transducers; K0.5Na0.5NbO3-LiTaO3-LiSbO3:Ba; bulk resistivity; coercive field; donor-doped barium; donor-doped solid solution system; dopant concentrations; electron-hole compensation model; embedded medical ultrasound applications; grain growth inhibitor; grain size; lead-free piezoelectric ceramic transducer; longitudinal coupling coefficient; perovskite structure; piezoelectric charge coefficient; polarization level reduction; remnant polarization; single-element ultrasonic transducers; Barium; Bioceramics; Biomedical transducers; Ceramics; Environmentally friendly manufacturing techniques; Piezoelectric materials; Piezoelectric polarization; Piezoelectric transducers; Ultrasonic imaging; Ultrasonic transducers; Ceramics; Equipment Design; Equipment Failure Analysis; Lead; Materials Testing; Reproducibility of Results; Sensitivity and Specificity; Solutions; Transducers; Ultrasonography;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2008.630
Filename :
4454316
Link To Document :
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