4.7 Article

Synthesis, sintering and microwave dielectric properties of Zn-doped Li3Mg4NbO8 ceramics

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 925, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2022.166818

Keywords

Mg-Site ion doping; Li-3(Mg1-xZnx)(4)NbO(8)ceramic; Low dielectric loss; Good temperature stability

Funding

  1. Major Projects of Science and Technology in Tianjin [18ZXJMTG00020]

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The effect of ionic substitution in pure Li3Mg4NbO8 ceramics was investigated for the first time. By replacing Mg2+ with appropriate amounts of Zn2+, a novel Li-3(Mg1-xZnx)(4)NbO8 ceramic with improved properties was successfully synthesized. The relationship between crystal structure and properties was established, and doping with Zn2+ was found to enhance the ceramic's properties.
In this work, the effect of ionic substitution at the Mg-site in pure Li3Mg4NbO8 ceramics, including sintering characteristics and microwave properties, has been investigated for the first time. A novel Li-3(Mg1-xZnx)(4)NbO8 ceramic has been successfully synthesized via the solid-phase reaction method by replacing Mg2+ with appropriate amounts of Zn2+. The relationship between crystal structure and properties has been established based on complex chemical bonding theory. There is a strong correlation between dielectric constant and ionicity, while the quality factor is related to the density and the lattice energy. The temperature coefficient of the resonance frequency and the dielectric constant after correction for porosity are closely related. Doping with appropriate amounts of Zn2+ can significantly improve the properties of pure Li3Mg4NbO8 ceramics. The Li-3(Mg1-xZnx)(4)NbO8 ceramic obtained at x = 0.04 has the following sintering properties at 1075 ?: epsilon r = 15.0 +/- 0.08, Qxf = 121,157 +/- 1300 GHz, & UTau;f = -8.23 +/- 0.11 ppm/?, which combines characteristics of low dielectric constant, high quality factor, and temperature coefficient close to zero. Therefore, the resulting ceramic can be an ideal microwave dielectric material for the miniaturization and integration of microwave devices in 5 G.(c) 2022 Elsevier B.V. All rights reserved.

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