Synthesis of high-purity hafnium boride powder
A high-purity, powder technology, applied in the field of ceramic materials, can solve the problems of low powder purity, narrow distribution range, low cost, etc., and achieve the effect of simple preparation process, less equipment, and easy realization.
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Embodiment 1
[0019] Using hafnium dioxide (2μm, 99%), boron carbide (1.5μm, 96%), graphite (1.5μm, 99%) as raw materials, based on carbothermal reduction reaction, weigh HfO 2 : 4.214g, B 4 C: 0.691g, C: 0.225g, using absolute ethanol as the ball milling medium, Si 3 N 4 The ball is a grinding ball, the ratio of ball to material is 2.5:1, and the ball mill is mixed for 10 hours. After the obtained slurry is dried by rotary evaporation, the 2 The compact is compacted under a pressure of 1000°C, and then heat-treated in a vacuum furnace with a vacuum degree of 2 , the oxygen content is 0.2wt%, and the average particle size is 1.15μm. The XRD pattern of the powder is as follows figure 1 shown. Sample labeled: HBC.
Embodiment 2
[0021] Based on the carbothermal reduction reaction, weigh HfO 2 : 4.214g, B 4 C: 0.921 g, batching was performed. Prepare HfB according to the method of embodiment 1 2 Powder. The main component of the obtained powder is HfB 2 , the oxygen content is 0.16wt%, and the average particle size is 0.92μm. The XRD pattern of the powder is as follows figure 1 shown. Sample labeled: HB1.
Embodiment 3
[0023] Based on the carbothermal reduction reaction, weigh HfO 2 : 4.214g, B4 C: 0.873g, C: 0.05g were compounded. Prepare HfB according to the method of embodiment 1 2 Powder. The main component of the obtained powder is HfB 2 , the oxygen content is 0.18wt%, and the average particle size is 0.66μm. The XRD pattern and microscopic appearance of the powder are as follows: figure 1 and figure 2 As shown in (a), the particle size distribution is as follows image 3 shown. Sample labeled: HB2.
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