Preparation of HfCN Nanoparticles Derived from a Multifunction Precursor with Hf-O and Hf-N Bonds.

Materials (Basel)

National Key Laboratory of Science and Technology on High-Strength Structural Materials, Central South University, Changsha 410083, China.

Published: June 2023

HfCN nanoparticles were synthesized using the urea-glass route, employing hafnium chloride, urea, and methanol as raw materials. The synthesis process, polymer-to-ceramic conversion, microstructure, and phase evolution of HfCN/C nanoparticles were thoroughly investigated across a wide range of molar ratios between the nitrogen source and the hafnium source. Upon annealing at 1600 °C, all precursors demonstrated remarkable translatability to HfCN ceramics. Under high nitrogen source ratios, the precursor exhibited complete transformation into HfCN nanoparticles at 1200 °C, with no observed presence of oxidation phases. In comparison to HfO, the carbothermal reaction of HfN with C significantly reduced the preparation temperature required for HfC. By increasing the urea content in the precursor, the carbon content of the pyrolyzed products increased, leading to a substantial decrease in the electrical conductivity of HfCN/C nanoparticle powders. Notably, as the urea content in the precursor increased, a significant decrease in average electrical conductivity values was observed for the R4-1600, R8-1600, R12-1600, and R16-1600 nanoparticles measured at a pressure of 18 MPa, yielding values of 225.5, 59.1, 44.8, and 46.0 S·cm, respectively.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10303935PMC
http://dx.doi.org/10.3390/ma16124426DOI Listing

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