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April 30, 2026Journal of Advanced Ceramics2 citationsOpen Access

High toughness and strong microwave absorption of layered Si 3 N 4 SiC/BN ceramics loaded with different SiC content

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EZErlin ZhaoYJYi JiaQLQuan Li

Key Points

  • This research aims to examine the effect of SiC content on the mechanical and microwave absorption properties of layered Si3N4-SiC/BN ceramics.
  • Layered ceramics were prepared using tape casting and hot pressing techniques.
  • Different micro-sized SiC content levels were incorporated into the ceramics.
  • Mechanical properties and microwave absorption were evaluated, particularly within the X-band.
  • Layered ceramics exhibited flexural strengths over 600 MPa and fracture toughness exceeding 20 MPa·m1/2.
  • Ceramics with 30 wt.% SiC achieved a minimum reflection loss (RL) of -51.3 dB and effective absorption bandwidth (EAB) of 0.84 GHz.
  • Simulations suggested that bilayer structures could improve microwave absorption with RLmin of -34 dB and EAB of 3.2 GHz.

Abstract

The layered ceramics could simultaneously achieve high toughness and strong microwave absorption. In this work, the layered Si3N4-SiC/BN ceramics were prepared by tape casting and hot pressing, and the effect of micro-sized SiC content on their mechanical and microwave absorption properties was investigated. The results show that micro-sized SiC content has little effect on the mechanical properties of layered Si3N4-SiC/BN ceramics. All layered ceramics exhibited excellent mechanical properties, with flexural strengths exceeding 600 MPa and apparent fracture toughness exceeding 20 MPa·m1/2. The layered ceramics containing 30 wt.% SiC showed the best attenuation within the X-band (8.2–12.4 GHz), with a minimum reflection loss (RL) of −51.3 dB and an effective absorption bandwidth (EAB) of 0.84 GHz. Simulations show that super-layered architectures composed of layered ceramics loaded with different SiC content can further improve microwave absorption, with the designed bilayer structure achieving an RLmin of –34 dB and an EAB of 3.2 GHz in the X-band. This work lays a foundation for further optimization and fabrication of high-performance microwave absorption ceramics via structural design.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69f2a4da8c0f03fd67763f88https://doi.org/10.26599/jac.2026.9221310
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