DocumentCode
3077285
Title
Investigation of potassium niobate as an ultrasonic transducer material
Author
Kari, N.M. ; Ritter, T.A. ; Park, S.-E. ; Shrout, T.R. ; Shung, K.K.
Author_Institution
NIH Resource Center for Med. Ultrasonic Transducer Eng., Penn State Univ., University Park, PA, USA
Volume
2
fYear
2000
fDate
36800
Firstpage
1065
Abstract
This paper investigates the use of single crystal potassium niobate (KNbO3) as an ultrasonic transducer material. Crystallographic engineering allows the samples to be optimized for high coupling coefficients for the vibration modes of interest. The piezoelectric properties of KNbO3 in both thickness and length extensional mode have been measured for two different crystallographic orientations. The measured high coupling coefficients (kt =68% and k33=75%) mid-range Qm(mechanical) of 40 and high longitudinal velocities of 8000 m/sec enable the use of KNbO3 for high frequency transducers. A potential drawback is high measured values of electrical loss. In order to investigate losses at the frequencies of interest a curve-fitting program was used. The results show low losses above 1 MHz. A 10 Mhz transducer was fabricated using two optimally designed matching layers to match the high acoustic impedance with tissue. Modeling was performed both with the measured losses at 1 kHz and the low loss values obtained through curve fitting. The experimental pulse echo response indicates that the effect of losses on the transducer performance is minimal, indicating that losses are not a major factor. A broad bandwidth of 64% and insertion loss of 17 dB was obtained
Keywords
biomedical transducers; piezoelectric materials; potassium compounds; ultrasonic transducers; 10 MHz; KNbO3; acoustic impedance; bandwidth; biomedical transducers; coupling coefficients; crystallographic orientation; curve-fitting program; electrical loss; high frequency transducers; length extensional mode; piezoelectric properties; pulse echo response; single crystal; thickness mode; ultrasonic transducer material; Acoustic measurements; Acoustic transducers; Crystalline materials; Crystallography; Curve fitting; Frequency; Loss measurement; Niobium compounds; Ultrasonic transducers; Ultrasonic variables measurement;
fLanguage
English
Publisher
ieee
Conference_Titel
Ultrasonics Symposium, 2000 IEEE
Conference_Location
San Juan
ISSN
1051-0117
Print_ISBN
0-7803-6365-5
Type
conf
DOI
10.1109/ULTSYM.2000.921508
Filename
921508
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