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Journal of Ceramic Science and Technology

The Journal of Ceramic Science and Technology publishes original scientific articles on all topics of ceramic science and technology from all ceramic branches. The focus is on the scientific exploration of  the relationships between processing, microstructure and properties of sintered ceramic materials as well as on new processing routes for innovative ceramic materials. The papers may have either theoretical or experimental background. A high quality of publications will be guaranteed by a thorough double blind peer review process.

The Journal is published by Göller Verlag GmbH on behalf of the Deutsche Keramische Gesellschaft (DKG). Edited by Yu-Ping Zeng, Shanghai Institute of Ceramics, Chinese Academy of Sciences, China.

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Microwave Dielectric Properties of (1-x)CaTiO3-x(Na0.5Nd0.5)TiO3 Ceramics

A.E. Reda, D.M. Ibrahim, D.A. Abdel Aziz

Ceramic Department, National Research Centre, 12622, Dokki, Cairo, Egypt.

received December 8, 2015, received in revised form February 20, 2016, accepted March 8, 2016

Vol. 7, No. 3, Pages 243-248   DOI: 10.4416/JCST2015-00083

Abstract

The crystal structures, phase compositions and the microwave dielectric properties of (1-x)Ca2+TiO3 - x(Na1+0.5 Nd3+0.5)TiO3 ceramics prepared by the conventional solid state route have been investigated. The formation of solid solution is confirmed in XRD patterns. A specimen using 0.92Ca2+TiO3-0.08(Na1+0.5Nd3+0.5)TiO3 (x = 0.08) sintered at 1250 °C/2 h possesses an excellent combination of microwave dielectric properties, (εr) = 31.8, a maximum (Qxf) value of 2·104 at 5 GHz. This may be related to the increase in density as well as the grain morphology, which led to a reduction in the dielectric loss to a value of 0.25·10-3. It is proposed as a suitable candidate material for small-sized GPS patch antennas.

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Keywords

Microwave, dielectric properties, calcium titanate, sodium neodymium titanate

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