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Название The mechanism of titanium diboride low-temperature synthesis
DOI 10.17580/nfm.2019.02.06
Автор Gorlanov E. S.
Информация об авторе

EXPERT-AL LLC, St. Petersburg, Russia:

E. S. Gorlanov, Deputy CEO, e-mail: gorlanove@yandex.ru

Реферат

To determine the mechanism and conditions for the increased of product yield of titanium diboride TiB2 lowtemperature synthesis, a thermodynamic assessment of the interaction in the TiО2 – B2О3 – C system was performed. A numerical method was used to study a series of consequentially-parallel processes for the reduction of titanium oxide to its non-stoichiometric oxycarbide phase and its subsequent interaction with gaseous boron oxides. The Gibbs energy was estimated for oxycarbide TiCxO1 – x and titanium borate TiBO3 at 1027 oC, which are related as G0TiCxO1 – x >> G0TiBO3. This energy ratio of intermediate products of the titanium diboride synthesis allowed to make essential corrections in providing conditions and final results of synthesis. At the first stage of the process, it was established that fluorine-doped titanium oxide TiO2 – xFx is reduced to oxycarbide TiCxO1 – x with a deficient carbon content of x < 0.5. At the final stage, exposure of isolated system at a fixed temperature requires moderate kinetic stimulation of TiB2 synthesis by periodic vacuuming. This is due to the need to create conditions for the disproportionation of gaseous boron oxide B2O3(gas) to its suboxides (B2O2(gas), BO2(gas)) in the volume of the reaction mixture TiО2 – B2О3 – C and to suppress the “parasitic” reaction of the titanium borate TiBO3 formation. The established mechanism assumes observance of balance between temperature and duration of phase transformations during the exposure of the system at the first stage, a balance between the increased PB2O2/PCO ratio in the gas phase and the temperature at the final stage of the titanium diboride synthesis. The mechanism and conditions for the TiB2 synthesis are confirmed by laboratory experiments, the implementation of which allows to obtain titanium diboride powders of technical purity at 1030–1050 oC.

Ключевые слова Anatase-rutile transformation, synthesis mechanism, thermodynamic assessment, phase formation, low-temperature synthesis, titanium oxycarbide, titanium borate, titanium diboride, boron oxide, disproportionation
Библиографический список

1. Gorlanov E. S., Bazhin V. Yu., Fedorov S. N. Low-Temperature Phase Formation in a Ti – B – C – O System. Tsvetnye metally. 2017. No. 8. pp. 76–81. DOI: 10.17580/tsm.2017.08.12.
2. Gorlanov E. S., Bazhin V. Yu., Fedorov S. N. Carbothermic Synthesis of Titanium Diboride: Upgrade. Journal of Siberian Federal University. Chemistry. 2018. Vol. 11, Iss. 2. pp. 156–166.
3. Gorlanov E. S., Ugolkov V. L. To The Question of Low-Temperature Synthesis of Titanium Diboride. Proceedings of Irkutsk State Technical University. 2018. Vol. 22, Iss. 2. pp. 153–165.
4. Voitovich R. F., Pugach E. A. High-Temperature Oxidation of Group IV Metal Borides. 1. Oxidation of Titanium Diboride. Soviet Powder Metallurgy and Metal Ceramics. 1975. Vol. 14, Iss. 2. pp. 132–135.
5. Koh Y.-H., Lee S.-Y., Kim H.-E. Oxidation Behavior of Titanium Boride at Elevated Temperatures. Journal of the American Ceramic Society. 2001. Vol. 84, No. 1. pp. 239–241.
6. Huang F., Fu Zh.,Wang W., Wang H., Zhang J., Zhang Q. Oxidation Behavior of Titanium Diboride Ceramic at Different Temperatures. Journal of the Chinese Ceramic Society. 2008. Vol. 36, No. 5. pp. 584–587.
7. Lamoreaux R. H., Hildebrand D. L., Brewer L. High-Temperature Vaporization Behavior of Oxides II: Oxides of Be, Mg, Ca, Sr. Ba, B, Al, Ga, In, Tl, Si, Ge, Sn, Pb, Zn, Cd and Hg. Journal of Physical and Chemical Reference Data. 1987. Vol. 16. Iss. 3. pp. 419–443.
8. Weimer A. W., Roach R. P., Haney C. N., Moore W. G., Rafaniello W. Rapid Carbothermal Reduction of Boron Oxide in a Graphite Transport Reactor. AIChE Journal. 1991. Vol. 37, Iss. 5. pp. 759–768.
9. Bagaratyan N. V., Makarov A. V. Ionization of Vapor Over a Mixture of (B2O3 + B) by Electron Impact. Ionization Potentials of B2O2 and BO Molecules. Bulletin of Moscow University. Series. 2. Chemistry. 1998. Vol. 39, Iss. 2. pp. 91–93.
10. Dacic B. Z., Jokanovi V., Jokanovi B., Dramicanin M. D. Thermodynamics of Gas Phase Carbothermic Reduction of Boron-Anhydride. Journal of Alloys and Compounds. 2006. Vol. 413, Iss. 1-2. pp. 198–205.
11. Smirnyagina N. N. Thermophysical and Thermochemical Processes of Protective Coatings Formation in a Vacuum When Exposed to an Electron Beam. Diss. for the degree of Doctor of Tech. Sci. Ulan-Ude, 2007. 278 p.
12. Makarov A. V. Bagaratyan N. V., Zbezhneva S. G., Aleshko-Ozhevskaya L. A., Georgobiani T. P. Ionization and fragmentation of B2O2 and BO molecules during electron impact. Bulletin of Moscow University. Series. 2. Chemistry. 2000. Vol. 41, Iss. 4. pp. 227–230.
13. Özkan ., Dokumaci E., Bülent Önay A. Cyclic Oxidation Behavior of TiB2 Pellets at Elevated Temperatures. Journal of the Australian Ceramic Society. 2017. Vol. 53, Iss. 2. pp. 415–420.
14. Ke Bao. Low Temperature Synthesis of Boron-Based Materials in Molten Salts: Ph.D. thesis, University of Exeter. Exeter, Devon, South West England, 2017. 186 p.

Полный текст статьи The mechanism of titanium diboride low-temperature synthesis
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