Issue 46, 2023

Enhanced flexural strength and microwave dielectric properties of Li2MgTi3O8-based low temperature co-fired ceramics

Abstract

With the rapid development of 6G wireless communication, research on highly integrated and multifunctional miniature electronic components has gained significant attention. Li2MgTi3O8 (LMT) ceramics are excellent microwave dielectric materials. However, their high sintering temperature and low flexural strength limit their application in LTCC devices. Therefore, in this study, TiN-doped LMT ceramics were prepared using a traditional solid-state reaction method, and the effects of TiN addition on the LMT ceramics were investigated. The best performance of Q × f = 67 275 GHz, τf = −6.02 ppm °C−1, εr = 24.53, and σf = 174.7 MPa was obtained for LMT ceramics doped with 0.2 wt% TiN sintered at 1025 °C. The addition of 1 wt% LiF and 1 wt% MgO to LMT + 0.3 wt% TiN (LMT-NFM) ceramics reduced the sintering temperature, increased the density, and enhanced the flexural strength of the ceramics. When the sintering temperature was 850 °C, the material exhibited the best performances with Q × f = 53 477 GHz (at 7.48 GHz), τf = −9.50 ppm °C−1, εr = 24.94, and σf = 200.98 MPa. The LMT-NFM ceramic could coexist with the Ag electrode, indicating that it is a promising material for manufacturing ceramic multilayer packaging substrates and various functional components.

Graphical abstract: Enhanced flexural strength and microwave dielectric properties of Li2MgTi3O8-based low temperature co-fired ceramics

Article information

Article type
Paper
Submitted
20 Aug 2023
Accepted
08 Nov 2023
First published
17 Nov 2023

J. Mater. Chem. C, 2023,11, 16346-16355

Enhanced flexural strength and microwave dielectric properties of Li2MgTi3O8-based low temperature co-fired ceramics

H. Deng, X. Qu, P. Gao, Y. Liu, W. Chen, X. Chen and H. Zhou, J. Mater. Chem. C, 2023, 11, 16346 DOI: 10.1039/D3TC02976J

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