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In-Situ Synthesis of ZrB2-SiC Composite Powders: A Review of Processing-Sintering Relationships
Yutong Niu
Powder Metallurgy Research Insitute, Central South University, Changsha, Hunan, 410083, China
received September 15, 2025, received in revised form October 22, 2025, accepted October 26, 2025
Vol. 17, No. 2, Pages 107-120 DOI: 10.4416/JCST2025-00025
Abstract
Zirconium diboride-silicon carbide (ZrB2-SiC) composites are leading candidates for ultra-high temperature applications due to their exceptional thermal, mechanical, and oxidation resistance properties. This review critically analyzes in-situ synthesis strategies – namely boro/carbothermal reduction, self-propagating high-temperature synthesis (SHS), sol-gel, and polymer-derived ceramic (PDC) routes – and their impact on powder morphology, phase homogeneity, and sintering behavior. Each method presents a distinct trade-off between scalability, purity, and nanostructural control. The subsequent consolidation techniques, including hot pressing, spark plasma sintering (SPS), and pressureless sintering, are evaluated in terms of their ability to preserve the fine features of the synthesized powders. Particular attention is paid to the influence of sintering aids, grain growth inhibitors, and reactive sintering in achieving dense, defect-free microstructures. The review highlights how synthesis-sintering integration, particularly leveraging rapid consolidation techniques, governs critical performance metrics such as maximum reported hardness (up to 23 GPa) and fracture toughness (exceeding 6 MPa·m¹/²). Specifically, these benchmark properties, for instance, a hardness of 22.7 ± 1.4 GPa and a fracture toughness of 6.3 ± 0.3 MPa·m¹/², are achieved with highly integrated processes such as Reactive Spark Plasma Sintering (R-SPS) of ZrC/B4C/Si precursors, which optimizes phase homogeneity and microstructural refinement for superior performance, and oxidation behavior above 1 500 °C. Key microstructural determinants – such as SiC distribution and residual porosity -are discussed in relation to crack deflection, thermal shock resistance, and borosilicate glass layer formation. The work concludes by identifying the main scientific and technological barriers to industrial adoption, notably oxygen contamination, agglomeration, and process scalability, and proposes future research pathways to enable the next generation of UHTC systems.
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Keywords
Nanostructure control, densification techniques, phase purity, thermal degradation, fracture mechanics
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