SELF-PROPAGATING HIGH-TEMPERATURE SYNTHESIS OF TITANIUM SILICIDE IN SILICON-TITANIUM HALIDE-SODIUM AZIDE SYSTEM

L. Kondratieva
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Abstract

The objective is to study the possibility of ob-taining titanium silicide using the azide technology of self-propagating high-temperature synthesis (SHS-Az) in silicon-titanium halide-sodium azide system. The task to which the paper is devoted is to find the optimal composition of the charge, which combus-tion gives the opportunity to obtain titanium halide by SHS-Az method. Research methods: the study of the titanium sil-icide synthesis in powder is carried out in the mode of solid-flame combustion in SHS-Az laboratory reactor. The synthesized powders are subjected to studies al-lowing to define the phase composition and structure. The studies are carried out using a diffractometer and a scanning electron microscope. The novelty of the work is in synthesizing tita-nium silicide not only by a new method in the mode of high-temperature combustion of the heterogeneous silicon-titanium halide-sodium azide system, but also by obtaining a powder with close values to the range of nanoparticles. Study results of obtaining titanium silicide by SHS-Az method from the heterogeneous silicon-titanium halide-sodium azide system show that the target product is a finely dispersed mixture of particles of equal shape but of different phase composition: Ti5Si3, TiSi2, TiN, Si, Ti. The average particle size is equal to 150-200 nm. Conclusions: it is found that Ti5Si3 and TiSi2 ti-tanium silicides can be obtained in the combustion mode by SHS-Az method from silicon-titanium halide-sodium azide system.
硅-卤化钛-叠氮化钠体系自蔓延高温合成硅化钛
目的是研究在硅-卤化钛-叠氮化钠体系中采用自蔓延高温合成叠氮化技术制备硅化钛的可能性。本文的任务是找到最优的装药组成,其中燃烧为用SHS-Az法获得卤化钛提供了机会。研究方法:在SHS-Az实验室反应器中,采用固体火焰燃烧的方式进行粉末合成杀硅钛的研究。对合成的粉末进行了研究,确定了相组成和结构。研究是用衍射仪和扫描电子显微镜进行的。本研究的新颖之处在于,不仅在非均相硅-卤化钛-叠氮化钠体系的高温燃烧模式下合成了硅化钛,而且获得了接近纳米颗粒范围的粉体。用SHS-Az法从非均相硅-卤化钛-叠氮化钠体系中获得硅化钛的研究结果表明,目标产物是Ti5Si3、TiSi2、TiN、Si、Ti等形状相同但相组成不同的颗粒的精细分散混合物。平均粒径为150-200 nm。结论:以硅-卤化钛-叠氮化钠为原料,采用SHS-Az燃烧方式可制得Ti5Si3和TiSi2钛-硅化钛。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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