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Insights into the microstructural evolution and ablation mechanism of HfCxN1−x ceramics subjected to extreme laser ablation

  • Xue Li
  • , Wei Li
  • , Yanqin Fu
  • , Jianhua Zhang
  • , Sen Yang
  • , Zifeng Hu
  • , Junhao Zhao
  • , Yongbo Cao
  • , Jian Zhang
  • , Yulei Zhang
  • Northwestern Polytechnical University Xian
  • Henan Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Hafnium carbonitride (HfCxN1−x) ceramics show great potential for thermal protection systems due to their ultra-high melting point, and investigating their ablation behavior is essential for their application under extreme conditions. In this work, HfCxN1−x ceramics with varying nitrogen contents were synthesized via polymer-derived ceramic followed by spark plasma sintering. Laser ablation tests showed that HfC0.75N0.25 achieved excellent ablation resistance under the laser power of 500 W, with linear and mass ablation rates of 1.08 µm s−1 and 0.32 mg s−1, respectively. This is ascribed to the high melting point and exceptional thermal stability of HfC0.75N0.25, which result from moderate nitrogen incorporation. During laser ablation, dislocation accumulation and the formation of lath-like structures dissipate part of the laser heat flux. Subsequently, a dense Hf(C, N, O) solid solution layer with high viscosity forms, which effectively impedes oxygen diffusion and maintains stable ablation resistance of HfC0.75N0.25. Conversely, excessive nitrogen incorporation induces the formation of the Hf7O8N4 phase with numerous defects and crack nucleation, ultimately deteriorating laser ablation resistance. These findings provide useful insights for the design and development of ultra-high temperature ceramics for applications in extreme environments.

Original languageEnglish
Pages (from-to)114-124
Number of pages11
JournalJournal of Materials Science and Technology
Volume283
DOIs
StatePublished - 10 Mar 2027

Keywords

  • Hafnium carbonitride
  • Laser ablation resistance
  • Polymer-derived ceramic
  • Spark plasma sintering
  • Ultra-high temperature ceramics

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