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Original Articles

Effect of additives on microwave dielectric properties in low-temperature firing (Mg,Ca)TiO3 based ceramics

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Pages 255-262 | Received 28 Aug 1996, Accepted 13 Jan 1997, Published online: 07 Mar 2011

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M. T. Sebastian & H. Jantunen. (2008) Low loss dielectric materials for LTCC applications: a review. International Materials Reviews 53:2, pages 57-90.
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Kensuke Wada, Ken-ichi Kakimoto & Hitoshi Ohsato. (2005) Control of temperature coefficient of resonant frequency in Ba4Sm9.33Ti18O54 ceramics by templated grain growth. Science and Technology of Advanced Materials 6:1, pages 54-60.
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Articles from other publishers (19)

Yiqun Ni, Shanshan Li, Bo Hou, Weizhuang Zhuo & Weijia Wen. (2024) Preparation of Sol–Gel-Derived CaO-B2O3-SiO2 Glass/Al2O3 Composites with High Flexural Strength and Low Dielectric Constant for LTCC Application. Materials 17:2, pages 511.
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Jasdeep Singh & Shalini Bahel. (2021) Synthesis and characterization of temperature stable low-loss (1−x)Mg(Ti0.95Sn0.05)O3–(x)BaTiO3 (0 ≤ x ≤ 0.1) ceramics for microwave applications. Journal of Materials Science 56:18, pages 10947-10964.
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M.T. Sebastian & Heli Jantunen. 2017. Microwave Materials and Applications 2V Set. Microwave Materials and Applications 2V Set 355 425 .
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Lin Cheng, Peng Liu, Shi-Xian Qu, Lei Cheng & HuaiWu Zhang. (2015) Microwave dielectric properties of Mg2TiO4 ceramics synthesized via high energy ball milling method. Journal of Alloys and Compounds 623, pages 238-242.
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T. Santhosh Kumar, R. K. Bhuyan, A. Perumal & D. Pamu. 2013. Advanced Nanomaterials and Nanotechnology. Advanced Nanomaterials and Nanotechnology 291 300 .
Kok-Wan Tay & Wei-Fan Wu. (2012) Pure Oxygen Atmosphere Sintering Behavior and Microwave Dielectric Properties of x(Mg0.96Co0.04)TiO3 - (1-x)SrTiO3 Ceramics. Procedia Engineering 36, pages 462-467.
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A. G. Belous & O. V. Ovchar. (2011) Multiphase microwave dielectrics. Materials Science-Poland 29:1, pages 47-55.
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Ying Gu, Yong-chang Jiang, Qiu-hong Yang & Eung-soo Kim. (2010) Effects of PbO-B2O3-CuV2O6 glass on the microwave dielectric properties of (Pb0.5Ca0.5)(Fe0.5Nb0.5)O3 ceramics. Journal of Shanghai University (English Edition) 14:5, pages 365-368.
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Cheng-Liang Huang & Shih-Sheng Liu. (2009) Dielectric characteristics of the (1−x)Mg2TiO4–xSrTiO3 ceramic system at microwave frequencies. Journal of Alloys and Compounds 471:1-2, pages L9-L12.
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MAILADIL T. SEBASTIAN. 2008. Dielectric Materials for Wireless Communication. Dielectric Materials for Wireless Communication 445 512 .
MAILADIL T. SEBASTIAN. 2008. Dielectric Materials for Wireless Communication. Dielectric Materials for Wireless Communication 379 443 .
Anatolii Belous, Oleg Ovchar, Dmitrii Durylin, Matjaz Valant, Marjeta Macek-Krzmanc & Danilo Suvorov. (2007) Microwave composite dielectrics based on magnesium titanates. Journal of the European Ceramic Society 27:8-9, pages 2963-2966.
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Anatolii Belous, Oleg Ovchar, Dmitrii Durilin, Marjeta Macek Krzmanc, Matjaz Valant & Danilo Suvorov. (2006) High‐Q Microwave Dielectric Materials Based on the Spinel Mg 2 TiO 4 . Journal of the American Ceramic Society 89:11, pages 3441-3445.
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Florent Belnou, Jérôme Bernard, David Houivet & Jean-Marie Haussonne. (2005) Low temperature sintering of MgTiO3 with bismuth oxide based additions. Journal of the European Ceramic Society 25:12, pages 2785-2789.
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Qiu Hong Yang, Eung Soo Kim, Young Jin Kim & Pyung Kyu Kim. (2003) Effect of PbO–B2O3–V2O5 glass on the microwave dielectric properties of (Pb, Ca, La)(Fe, Nb)O3 ceramics. Materials Chemistry and Physics 79:2-3, pages 236-238.
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Lingxia Li, Xiawan Wu & Zheng Zhu. (2003) Microwave dielectric materials based on the MgO–SiO2–TiO2 system. Journal of the European Ceramic Society 23:14, pages 2569-2572.
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M.P. Seabra & V.M. Ferreira. (2002) Synthesis of La(Mg0.5Ti0.5)O3 ceramics for microwave applications. Materials Research Bulletin 37:2, pages 255-262.
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