Journal of Inorganic Materials, Volume. 37, Issue 5, 493(2022)
[1] F DONALD S, S ANDREW M, P MARK D. Manufacturing experience with high performance mixed dielectric circuit boards. IEEE. Trans. Adv. Pack, 22, 153-159(1999).
[2] H YANG C, F XING C, L ZHAO. Effect of Co-substitution on the sintering characteristics and microwave dielectric properties of Li2MgTiO4 ceramics. Ceram. Int., 44, 7286-7290(2018).
[3] J BIAN J, H ZHANG X. Structural evolution, grain growth kinetics and microwave dielectric properties of Li2Ti1-
[4] C LI, H XIANG, M XU. Li2AGeO4(A = Zn, Mg): Two novel low-permittivity microwave dielectric ceramics with olivine structure. J. Eur. Ceram. Soc., 38, 1524-1528(2018).
[5] S RAJESH, P MURALI K, H JANTUNEN. The effect of filler on the temperature coefficient of the relative permittivity of PTFE/ceramic composites. Phys. B, 406, 4312-4316(2011).
[6] Y HU, Y ZHANG, H LIU et al. Microwave dielectric properties of PTFE/CaTiO3 polymer ceramic composites. Ceram. Int., 37, 1609-1613(2001).
[7] Q JIN S, WANG, X L, F WANG Z. Dielectric properties of modified SrTiO3/PTFE composites for microwave RF antenna applications. J. Mater. Sci.:Mater. Electron., 26, 7431-7437(2015).
[8] H YAO M, Y YUAN, Z LI E. Effects of (Na1/2Nd1/2)TiO3 on the microstructure and microwave dielectric properties of PTFE/ ceramic composites. J. Mater. Sci.:Mater. Electron., 29, 20680-20687(2018).
[9] C LUO F, B TANG, Y YUAN. Microstructure and microwave dielectric properties of Na1/2Sm1/2TiO3 filled PTFE, an environmental friendly composites. Appl. Surf. Sci., 436, 900-906(2018).
[10] Y PENG H, S REN H, Z DANG M. The dimensional effect of MgTiO3 ceramic filler on the microwave dielectric properties of PTFE/MgTiO3 composite with ultra-low dielectric loss. J. Mater. Sci.: Mater. Electron., 30, 6680-6687(2019).
[11] Q REN J, P YANG, J PENG Z. Novel Al2Mo3O12-PTFE composites for microwave dielectric substrates. Ceram. Int., 47, 20867-20874(2021).
[12] K YANG, C XIN, Y HUANG et al. Effects of extensional flow on properties of polyamide-66/poly(2,6-dimethyl-1,4-phenylene oxide) blends: a study of morphology, mechanical properties, and rheology. Sci. Polym. Eng., 57, 1090-1098(2017).
[13] S IKARI, H KASHIWADE, T MATSUOKA. Improvement of copper plating adhesion of PPE printed wiring board by plasma treatment. Surf. Coat. Technol., 202, 5583-5585(2008).
[14] J HWANG H, W HSU S, S WANG C. Synthesis and physical properties of low-molecular-weight redistributed poly(2,6-dimethyl- 1,4-phenylene oxide) for epoxy resin. J. Appl. Polym. Sci., 110, 1880-1890(2008).
[15] R GAO, A GU, G LIANG et al. Properties and origins of high-performance poly (phenylene oxide)/cyanate ester resins for high-frequency copper-clad laminates. J. Appl. Polym. Sci., 121, 1675-1684(2011).
[16] M LOMBADI, P FINO, L MONTANARO. Influence of ceramic particle features on the thermal behavior of PPO-matrix composites. Sci. Eng. Compos. Mater., 21, 23-28(2014).
[17] L RAMAJO, S CASTRO M, M REBOREDO M. Dielectric response and relaxation phenomena in composites of epoxy resin with BaTiO3 particles. Compos. Part A - Appl. Sci., 36, 1267-1274(2005).
[18] F LUO, B TANG, Y YUAN et al. Microstructure and microwave dielectric properties of Na1/2Sm1/2TiO3 filled PTFE, an environmental friendly composites. Appl. Surf. Sci., 436, 900-906(2018).
[19] Y SUN Y, Q ZHANG Z, P WONG C. Influence of interphase and moisture on the dielectric spectroscopy of epoxy/silica composites. Polymer, 46, 2297-2305(2005).
[20] Y RAO, M QU J, T MARINIS et al. A precise numerical prediction of effective dielectric constant for polymer-ceramic composite based on effective-medium theory. IEEE Trans. Compon. Packag. Technol., 23, 680-683(2000).
[21] H IM D, J JEON C, S KIM E. MgTiO3/polystyrene composites with low dielectric loss. Ceram. Int., 38, S191-S195(2012).
[22] W LI B, Y SHEN, X YUE Z. Influence of particle size on electromagnetic behavior and microwave absorption properties of Z-type Ba-ferrite/polymer composites. J. Magn. Mater., 313, 322-328(2007).
[23] S GEORGE, S ANJANA P, T SEBASTIAN M. Dielectric, mechanical, and thermal properties of low-permittivity polymer- ceramic composites for microelectronic applications. Int. J. Appl. Ceram. Technol., 7, 461-474(2010).
[24] T SEBASTIAN M. Polymer-ceramic composites of 0-3 connectivity for circuits in electronics: a review. Int. J. Appl. Ceram. Technol., 7, 415-434(2010).
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Xiaogang YAO, Haiyi PENG, Zhongyuan GU, Fei HE, Xiangyu ZHAO, Huixing LIN.
Category: RESEARCH ARTICLE
Received: Apr. 2, 2021
Accepted: --
Published Online: Jan. 10, 2023
The Author Email: LIN Huixing (huixinglin@mail.sic.ac.cn)