TY - JOUR
T1 - From molecular precursors to ultra-high temperature ceramics
T2 - A novel synthesis of hafnium carbonitride nanoceramics
AU - Li, Xue
AU - Zhang, Yulei
AU - Fu, Yanqin
AU - Zhao, Junhao
AU - Meng, Jiachen
N1 - Publisher Copyright:
© 2024
PY - 2025/7/10
Y1 - 2025/7/10
N2 - Hafnium carbonitride (HfCxN1–x) ceramics have drawn considerable interest due to their exceptional mechanical and thermophysical properties. Herein, we report a novel single-source precursor with Hf–N bonds as the main chain and fabricate HfCxN1–x ceramics after pyrolysis of the precursor. The synthesis, ceramic conversion, and microstructural evolution of the single-source precursor as well as the derived HfCxN1–x ceramics treated under various atmospheres were investigated. The results indicate that in an argon atmosphere, the nitrogen content within HfCxN1–x decreases with rising temperature. While under a nitrogen atmosphere, the high concentration of N2 facilitates the rapid conversion of HfO2 to Hf7O8N4, which subsequently promotes the transformation of the HfCxN1–x solid solution ceramics. During this process, there is also an inhibitory effect of N2 on the tendency of HfN into HfC. Moreover, the desired chemical composition of HfCxN1–x can be regulated by adjusting the N2 concentration in the heat treatment atmosphere. The present work proposes a novel strategy for the single-source precursor-derived carbonitride ceramics and provides a deep understanding of the preparation and property modulation of HfCxN1–x ceramics.
AB - Hafnium carbonitride (HfCxN1–x) ceramics have drawn considerable interest due to their exceptional mechanical and thermophysical properties. Herein, we report a novel single-source precursor with Hf–N bonds as the main chain and fabricate HfCxN1–x ceramics after pyrolysis of the precursor. The synthesis, ceramic conversion, and microstructural evolution of the single-source precursor as well as the derived HfCxN1–x ceramics treated under various atmospheres were investigated. The results indicate that in an argon atmosphere, the nitrogen content within HfCxN1–x decreases with rising temperature. While under a nitrogen atmosphere, the high concentration of N2 facilitates the rapid conversion of HfO2 to Hf7O8N4, which subsequently promotes the transformation of the HfCxN1–x solid solution ceramics. During this process, there is also an inhibitory effect of N2 on the tendency of HfN into HfC. Moreover, the desired chemical composition of HfCxN1–x can be regulated by adjusting the N2 concentration in the heat treatment atmosphere. The present work proposes a novel strategy for the single-source precursor-derived carbonitride ceramics and provides a deep understanding of the preparation and property modulation of HfCxN1–x ceramics.
KW - Carbon/Nitrogen Thermal Reduction
KW - Hafnium Carbonitride
KW - High-Temperature Pyrolysis
KW - Nitrogen Atmosphere
KW - Polymer-Derived Ceramics
UR - http://www.scopus.com/inward/record.url?scp=85214456037&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2024.10.021
DO - 10.1016/j.jmst.2024.10.021
M3 - 文章
AN - SCOPUS:85214456037
SN - 1005-0302
VL - 223
SP - 11
EP - 21
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -