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http://dx.doi.org/10.4191/KCERS.2002.39.12.1190

Microwave Dielectric Properties and Multilayer Characteristics of (1-x)BiNbO4-xCaNb2O6 Ceramics  

Kim, Eung-Soo (Department of Materials Engineering, Kyonggi University)
Choi, Woong (Department of Materials Engineering, Kyonggi University)
Kim, Jong-Dae (Department of Materials Engineering, Kyonggi University)
Kang, Seung-Gu (Department of Materials Engineering, Kyonggi University)
Shim, Kwang-Bo (Department of Ceramic Engineering, Hanyang University)
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Abstract
Microwave dielectric properties and multilayer characteristics $(1-x)BiNbO_4-xCaNb_2O_6$ (0${\le}$x${\le}$1.0) ceramics were investigated as a function of $CaNb_2O_6$ content. In the composition range of 0.25${\le}$x${\le}$0.75, the mixture phases of $BiNbO_4$ with stibotantalate structure and $CaNb_2O_6$ with columbite structure were detected and secondary phase or phase transition were not detected. Dielectric constant (K) of $(1-x)BiNbO_4-xCaNb_2O_6$ ceramics was largely dependent on the existing phase and could be estimated by the dielectric mixing rule calculated from maxwell equation. Typically, dielectric constant (K) of 26, quality factor (Qf) of 4300 GHz and Temperature Coefficient of resonant Frequency (TCF) of -18 ppm/${\circ}C$ were obtained for $0.5BiNbO_4-0.5CaNb_2O_6$ specimens with 0.8 wt% $CuV_2O_6$ sintered at 1000${\circ}C$ for 3h. The deviation of X-Y shrinkage and camber value of the multilayers obtained from $0.5BiNbO_4-0.5CaNb_2O_6$ green sheet sintered at 850∼950${\circ}C$ for 20 min. were smaller than those of $BiNbO_4$ multilayers.
Keywords
$(1-x)BiNbO_4-xCaNb_2O_6$; $CuV_2O_6$; Microwave dielectric properties; Multilayers; X-Y shrinkage; Camber value;
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