Interlocking layered Li 2 Si 2 O 5 : A novel low-permittivity microwave dielectric ceramic with superior dielectric and mechanical properties

Abstract Achieving low relative permittivity (εr) together with high mechanical reliability remains a key challenge for low-temperature co-fired ceramic (LTCC) substrates used in high-frequency communication and electronic packaging. Herein, single-phase Li2Si2O5 ceramics with a stable crystal framework and an interlocked layered microstructure are developed as low-permittivity LTCC substrate candidates. Their microwave and terahertz dielectric properties and mechanical performance are systematically investigated for the first time. The Li2Si2O5 ceramic sintered at 960 ℃ exhibits a low εr (4.86 ± 0.01), high quality factor (Q×f = 105,420 ± 366 GHz at 19.5 GHz and 175,131 GHz at 1 THz), and a moderate temperature coefficient of resonant frequency (τf = −24.84 ± 1.0 ppm/℃). Meanwhile, it achieves a hardness of 8.34 ± 0.05 GPa, a flexural strength of 320.72 ± 5.0 MPa, and a fracture toughness of 2.49 ± 0.06 MPa·m1/2, demonstrating its robust mechanical reliability. Furthermore, based on the P-V-L theory, the structure–property relationship between chemical bonding parameters and dielectric response is established. The ionicity of Li-O bonds is found to primarily govern εr, whereas the covalent character of Si-O bonds plays a dominant role in reducing intrinsic dielectric loss and regulating temperature stability, providing a theoretical basis for performance optimization. To further assess practical applicability, a 2.45 GHz microstrip patch antenna is designed using Li2Si2O5 +1 wt% LiF ceramic as the substrate. The simulated antenna possesses a high radiation efficiency of 90.64%, a gain of 5.60 dBi, and good impedance matching. These results confirm that Li2Si2O5 ceramics offer a promising combination of low εr, low loss, and mechanical robustness for high-frequency electronic packaging and Internet of Things (IoT) devices.

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Publication Details

Journal
Journal of Advanced Ceramics
Published
2026-09-24
DOI
https://doi.org/10.26599/jac.2026.9221384
Primary Topic
Microwave Dielectric Ceramics Synthesis
Type
article
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Interlocking layered Li 2 Si 2 O 5 : A novel low-permittivity microwave dielectric ceramic with superior dielectric and mechanical properties

Guangfan Tan, Xiuhong Yang, Yingchun Zhang, Yanwei Huang et al.
Journal of Advanced Ceramics
Microwave Dielectric Ceramics Synthesis
article

Interlocking layered Li 2 Si 2 O 5 : A novel low-permittivity microwave dielectric ceramic with superior dielectric and mechanical properties

Guangfan Tan, Xiuhong Yang, Yingchun Zhang, Yanwei Huang, Biao Yi
article en

Abstract

Abstract Achieving low relative permittivity (εr) together with high mechanical reliability remains a key challenge for low-temperature co-fired ceramic (LTCC) substrates used in high-frequency communication and electronic packaging. Herein, single-phase Li2Si2O5 ceramics with a stable crystal framework and an interlocked layered microstructure are developed as low-permittivity LTCC substrate candidates. Their microwave and terahertz dielectric properties and mechanical performance are systematically investigated for the first time. The Li2Si2O5 ceramic sintered at 960 ℃ exhibits a low εr (4.86 ± 0.01), high quality factor (Q×f = 105,420 ± 366 GHz at 19.5 GHz and 175,131 GHz at 1 THz), and a moderate temperature coefficient of resonant frequency (τf = −24.84 ± 1.0 ppm/℃). Meanwhile, it achieves a hardness of 8.34 ± 0.05 GPa, a flexural strength of 320.72 ± 5.0 MPa, and a fracture toughness of 2.49 ± 0.06 MPa·m1/2, demonstrating its robust mechanical reliability. Furthermore, based on the P-V-L theory, the structure–property relationship between chemical bonding parameters and dielectric response is established. The ionicity of Li-O bonds is found to primarily govern εr, whereas the covalent character of Si-O bonds plays a dominant role in reducing intrinsic dielectric loss and regulating temperature stability, providing a theoretical basis for performance optimization. To further assess practical applicability, a 2.45 GHz microstrip patch antenna is designed using Li2Si2O5 +1 wt% LiF ceramic as the substrate. The simulated antenna possesses a high radiation efficiency of 90.64%, a gain of 5.60 dBi, and good impedance matching. These results confirm that Li2Si2O5 ceramics offer a promising combination of low εr, low loss, and mechanical robustness for high-frequency electronic packaging and Internet of Things (IoT) devices.

Journal of Advanced Ceramics
Affordable and clean energy
Openalex Percentile: Top 21%
Microwave Dielectric Ceramics Synthesis
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Interlocking layered Li 2 Si 2 O 5 : A novel low-permittivity microwave dielectric ceramic with superior dielectric and mechanical properties — Guangfan Tan, Xiuhong Yang, et al. · Journal of Advanced Ceramics (2026) | TGRS Research Map | TGRS