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http://dx.doi.org/10.4313/TEEM.2012.13.6.283

The Piezoelectric Properties of (Na0.5K0.5)NbO3-K5.4Cu1.3Ta10O29 Ceramics with Various K5.4Cu1.3Ta10O29 Doping and Sintering Temperatures  

Yoon, Jung Rag (R&D Center, SAMWHA CAPACITOR CO. Ltd.)
Lee, Chang-Bae (R&D Center, SAMWHA CAPACITOR CO. Ltd.)
Lee, Serk Won (Department of System and Control Engineering, Hoseo University)
Lee, Heun-Young (Department of Electric Engineering, Myoung Ji University)
Publication Information
Transactions on Electrical and Electronic Materials / v.13, no.6, 2012 , pp. 283-286 More about this Journal
Abstract
(1-X)$(Na_{0.5}K_{0.5})NbO_3-XK_{5.4}Cu_{1.3}Ta_{10}O_{29}$ (NKN-KCT) lead-free piezoelectric ceramics have been synthesized by the conventional solid state sintering method, and their sinterability and piezoelectric properties were investigated. Typically, this material is sintered between 1,025 and $1,100^{\circ}C$ for 2 hours to achieve the required densification. Crystalline structures and Microstructures were analyzed by X-ray diffraction and scanning electron microscope. The density, dielectric constant (${\varepsilon}_r$), piezoelectric constant $d_{33}$, electromechanical coupling factor $k_p$ and mechanical quality factor $Q_m$ value of the NKN ceramics depended upon the KCT content and the sintering temperature. In particular, the KCT addition to NKN greatly improved the mechanical quality factor $Q_m$ value. The ceramic with X = 1.0 mol% sintered at $1,050^{\circ}C$ exhibited optimum properties (${\varepsilon}_r$=246, $d_{33}$=95, $k_p$=0.38 and $Q_m$=1,826). These results indicate that the ceramic is a promising candidate material for applications in lead free piezoelectric transformer and filter materials.
Keywords
Pb-free; Piezoelectric ceramics; Mechanical quality factor; NKN-KCT;
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Times Cited By KSCI : 2  (Citation Analysis)
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