材料科学
碳热反应
化学工程
硅酸
燃烧
无定形固体
氮化物
同质性(统计学)
氮化硅
多孔性
硅
选择性
氮气
相(物质)
复合数
超临界流体
渗氮
产量(工程)
催化作用
多孔硅
原材料
活化能
纳米技术
煅烧
比表面积
纳米尺度
作者
Zhizhu Tang,Jidong Ma,Mengge Han,Li Li,Zhongyou Que,Siyong Gu,H B Wu,Mingli Qin
标识
DOI:10.1016/j.jmrt.2026.07.135
摘要
To overcome the poor compositional homogeneity of mechanically mixed precursors in the conventional carbothermal reduction nitridation (CRN) process, a two-step synthesis route combining low-temperature combustion synthesis (LCS) with carbothermal reduction nitridation (CRN) was proposed. An amorphous porous SiO 2 /C composite precursor with nanoscale homogeneous mixing was first prepared by LCS, followed by CRN to synthesize high-purity α-Si 3 N 4 powder. The effects of the precursor C/SiO 2 weight ratio, nitridation temperature, and holding time on the phase composition and α/β phase selectivity of the products were systematically investigated. The results showed that a Si 3 N 4 yield of 96.76 wt% with an α-phase content of 99.07 wt% was achieved under the optimized conditions of a C/SiO 2 weight ratio of 2.5:1, a nitridation temperature of 1450 °C, a holding time of 6 h, and a nitrogen flow rate of 350 mL/min. The amorphous porous precursor provides abundant reactive sites and facilitates nitrogen diffusion, thereby enhancing the efficiency of the carbothermal reduction nitridation reaction and enabling the synthesis of high-purity α-Si 3 N 4 at relatively low temperature within a short reaction time, resulting in reduced energy consumption. Furthermore, low-cost silicic acid was employed as the silicon source, allowing the efficient and cost-effective preparation of high-purity α-Si 3 N 4 powder. This work provides a promising strategy for the low-cost synthesis of high-performance silicon nitride powders and is of significance for promoting the application of advanced structural ceramics.
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