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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (8): 2850-2862.DOI: 10.16552/j.cnki.issn1001-1625.2026.0172

• Ceramics • Previous Articles     Next Articles

Research Progress on Toughening Technologies of Silicon Nitride Ceramics

NIE Jingkai1,2(), HOU Dong1,2(), ZOU Jianming3, CHEN Tian4, ZHANG Yiming1,2, HAN Yu1,2, HE Qiang1,2   

  1. 1.State Key Laboratory of Advanced Power Transmission Technology,Beijing 102209,China
    2.Electric Power New Materials Research Institute,China Electric Power Research Institute,Beijing 100192,China
    3.Centralchina Branch of State Grid Corporation of China,Wuhan 430077,China
    4.State Grid Jiangxi Electric Power Co. ,Ltd. ,Nanchang 330077,China
  • Received:2026-02-25 Revised:2026-04-17 Online:2026-08-15 Published:2026-09-01
  • Contact: HOU Dong

Abstract:

As a high-performance structural engineering ceramics, Si3N4 has emerged as an ideal candidate material for demanding applications in advanced sectors such as aerospace, automotive, electronics, and medical technology, owing to its outstanding mechanical properties, wear resistance, thermal shock resistance, and chemical stability. However, the inherent high brittleness of Si3N4-based ceramics greatly restricts their application in a wider range of engineering fields. Over the years, researchers worldwide have conducted extensive research on the insufficient toughness in Si3N4-based ceramics. This paper systematically reviews the research progress on improving the toughness of Si3N4 ceramics: firstly, starting from the key factors affecting fracture toughness, it elaborates on the influence of powder properties of raw materials, sintering aid system, sintering process, and grain morphology and orientation distribution on the toughness of Si3N4 ceramics; based on this, it conducts in-depth analysis and discussion of the main toughening strategies and mechanisms. Finally, the paper outlines the future development trends and key breakthrough directions for high-toughness Si3N4 ceramics.

Key words: Si3N4 ceramics, toughening mechanism, microstructure, self-toughening, second-phase toughening, structural toughening, mechanical property

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