Title :
Electric field-induced strain behavior in lithium- and copper-added potassium sodium niobate piezoceramics and 1-3 piezocomposites
Author :
Alkoy, Ebru Mensur ; Berksoy, A. ; Tekdas, A.S.
Author_Institution :
Fac. of Eng., Maltepe Univ., Istanbul, Turkey
fDate :
9/1/2011 12:00:00 AM
Abstract :
Potassium sodium niobate (KNN)-based leadfree materials were prepared and their field-induced strain behaviors were investigated. Ceramic lead-free piezoelectric materials were prepared in bulk and fiber forms with 1 mol% CuO-added potassium sodium niobate K0.5Na0.5NbO3 and x = 7 mol% lithium-modified (K0.5-x/2 Na0.5-x/2Lix)NbO3 compositions. Fibers were drawn using a novel alginate gelation technique. Piezocomposites were prepared from these fibers with 1-3 connectivity and an epoxy matrix. A fully recoverable electrostrain of up to approximately 0.11% was observed in the CuO-added sample, whereas the Li-modified sample yielded up to 0.10% at 50 kV/cm electric field. A strain value of up to approximately 0.03% at 50 kV/cm electric field was obtained for piezocomposites prepared from lithium-modified fibers. The high-field converse piezoelectric coefficient was calculated from the strain-electric field (x-E) graph for all samples. Strain characteristics of the bulk and piezocomposite samples were analyzed based on the variation of strain with respect to square of the polarization (x-P2) to determine the electrostrictive contribution to the strain.
Keywords :
copper compounds; dielectric polarisation; electrostriction; fibres; lithium compounds; organic-inorganic hybrid materials; piezoceramics; piezoelectricity; potassium compounds; resins; sodium compounds; (K0.5-0.5xNa0.5-0.5xLix)NbO3; 1-3 connectivity; 1-3 piezocomposites; CuO-added potassium sodium niobate; K0.5Na0.5NbO3-CuO; alginate gelation technique; bulk form; ceramic lead-free piezoelectric materials; copper-added potassium sodium niobate piezoceramics; electric field-induced strain behavior; electrostrictive strain contribution; epoxy matrix; fiber form; fully recoverable electrostrain; high-field converse piezoelectric coefficient; lithium-added potassium sodium niobate piezoceramics; lithium-modified fibers; lithium-modified potassium sodium niobate; polarization; potassium sodium niobate-based leadfree materials; strain characteristics; strain variation; strain-electric field graph; Ceramics; Electric fields; Hysteresis; Lead; Optical fiber polarization; Optical fiber sensors; Strain;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2011.2017