TY - JOUR
T1 - Preparations of ZnWO4 based ceramics with near-zero resonant frequency temperature coefficient for microstrip antenna application
AU - Liu, Jiahao
AU - Liu, Xiangchun
AU - Wang, Fei
AU - Zhang, Miao
AU - Wang, Jiahui
AU - He, Xue
AU - Zhang, Meng
AU - Zhou, Hao
AU - Gao, Feng
N1 - Publisher Copyright:
© 2026 Elsevier Ltd and Techna Group S.r.l. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026
Y1 - 2026
N2 - (1-x)ZnWO4-xBa3(VO4)2 (x = 0.45-0.55), (1-x)ZnWO4-xTiO2 (x = 0.06-0.08) complex phase ceramics were prepared by secondary sintering process, and the phase structure, microstructure morphology and microwave dielectric properties of complex phase ceramics were systematically studied. Ba3(VO4)2 and TiO2 were used as additives to adjust the resonant frequency temperature coefficient of ceramics to be close to zero. The results show that the Ba3(VO4)2 phase is decomposed at high temperature. The compounding of TiO2 can change the microstructure morphology of ceramics and effectively regulate the τf of ceramics. With the increase of TiO2 content, the grain size of ZnWO4(ZW)-TiO2 gradually decreased, the dielectric constant εr gradually increased, the Q×f value decreased to a certain extent, and the τf value gradually approached zero. When the TiO2 content x = 0.07, the microwave dielectric properties of ZW-TiO2 complex ceramics were the best under the condition of 1050 °C for 2 h: εr = 19.21, Q×f = 65721 GHz, τf = −2 ppm/°C. On this basis, a microstrip patch antenna with a working frequency of 2.45 GHz is designed. The simulation results show that when the resonant frequency is 2.45 GHz, the S11 parameter is −34.77 dB, the maximum gain is 3.3 dB, and the radiation efficiency is 98.77%.
AB - (1-x)ZnWO4-xBa3(VO4)2 (x = 0.45-0.55), (1-x)ZnWO4-xTiO2 (x = 0.06-0.08) complex phase ceramics were prepared by secondary sintering process, and the phase structure, microstructure morphology and microwave dielectric properties of complex phase ceramics were systematically studied. Ba3(VO4)2 and TiO2 were used as additives to adjust the resonant frequency temperature coefficient of ceramics to be close to zero. The results show that the Ba3(VO4)2 phase is decomposed at high temperature. The compounding of TiO2 can change the microstructure morphology of ceramics and effectively regulate the τf of ceramics. With the increase of TiO2 content, the grain size of ZnWO4(ZW)-TiO2 gradually decreased, the dielectric constant εr gradually increased, the Q×f value decreased to a certain extent, and the τf value gradually approached zero. When the TiO2 content x = 0.07, the microwave dielectric properties of ZW-TiO2 complex ceramics were the best under the condition of 1050 °C for 2 h: εr = 19.21, Q×f = 65721 GHz, τf = −2 ppm/°C. On this basis, a microstrip patch antenna with a working frequency of 2.45 GHz is designed. The simulation results show that when the resonant frequency is 2.45 GHz, the S11 parameter is −34.77 dB, the maximum gain is 3.3 dB, and the radiation efficiency is 98.77%.
KW - Compound ceramics
KW - Microstrip patch antenna
KW - Microwave dielectric properties
KW - Resonant frequency temperature coefficient
KW - Secondary sintering
UR - https://www.scopus.com/pages/publications/105045391638
U2 - 10.1016/j.ceramint.2026.06.270
DO - 10.1016/j.ceramint.2026.06.270
M3 - 文章
AN - SCOPUS:105045391638
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -