Конференції

 
Т.В.Сидоренко 2,
   

1 Інститут проблем матеріалознавства ім. І. М. Францевича НАН України , Київ
2 Президія Національної академії наук України, Київ
valpol13@ukr.net

Usp. materialozn. 2024, 8/9:90-96
https://doi.org/10.15407/materials2024.08-09.009

Анотація


Посилання

1. Sydorenko, T. V., Poluyanskaya, V. V., Naidich, Yu. V. (2018). The effect of oxygen partial pressure on the processes of wetting and contact interaction in systems containing metal melts and ceramics based on tin dioxide. Adgeziya rasplavov i paika materialov, Vyp. 51, pp. 3—13 [in Ukrainian].

2. Granqvist, C. G., Hultaker, А. (2002). Transpparent and conducting ITO films: new developments and applications. Thin Solid Films, Vol. 411, is. 1, pp. 1—5.

3. Jantzen, T., Hack, К., Yazhenskikh, Е., Müller М. (2018). Thermodynamic assessment of oxide system In2O3, SnO2, ZnO. Chimica Techno Acta, Vol. 5, No. 4, pp. 166—188. http://dx.doi.org/10.15826/chimtech.2018.5.4.02

4. Kittral, R. V. (2000). Chemicalsensors. Moskva: Nauchnyy mir, 420 p. [in Russian].

5. Vuong, D. D., Sakai, G., Shimanoe, K., Yamazoe, N. (2004). Preparation of grainsize-controlled tin oxide sols by hydrothermal treatment for thin film sensor application. Sens. Actuators B, Vol. 103, pp. 386—391. http://dx.doi.org/10.1016/j.snb.2004.04.122

6. Koltun, M. M. (1976). Sective optical surfaces of solar energy converters. Moskva: Nauka, 148 p. [in Russian].

7. Gerisher, X. (1982). Solar energy conversion. Voprosy phiziki tverdogo tela, Moskva: Energoizdat, pp.106—189 [in Russian].

8. Chopra, K. L., Major, S., Pandya, D. K. (1983). Transparent conductors — A status review. Thin Sol. Films, Vol. 102, No. 1, pp. 1—46. https://doi.org/10.1016/0040- 6090(83)90256-0

9. Kostlin, H., Jost, R., Lems, W. (1975). Optical and electrical properties of doped In2O3 films. Phys. Stat. Solid. A, Vol. 29, is. 1, pp. 87—93.

10. Naidich, Yu. V., Krasovskyy, V. P., Durov, O. V., Sydorenko, T. V. (2015). Wettability and brazing of iono–ionocovalent ceramic materials by metal alloys containing electronegativeelements. Proc. of 6th Int. Brazing and Soldering conf. Long Beach, CA, USA, pp. 40—48.

11. Nekrasov, B. V. (1973). Basics of general chemistry. Moskva: Chimiya, T. 2, 688 p. [in Russian].

12. Fromm, E., Gerbhardt E. (1980). Gases and carbon in metals. Moskva: Metallurgiya, 712 p. [in Russian]. https://libarch.nmu.org.ua/handle/GenofondUA/69292

13. Heward, W. J., Swenson, D. J. (2007). Phase equilibriain the pseudo-binary In2O3—SnO2 system. J. Mater. Sci., Vol. 42, pp. 7135—7140.

14. Naidich, Yu. V. (1972). Contact phenomena in metal melts. Kiyv: Nauk. dumka, 196 p. [in Russian].

15. Naidich, Y. V. (2013). Advancein the theory of ceramic/liquid metal systems wettability. Peculiarity of contact processes for transition and non–transitionmetals. Adgeziya rasplavov i paika materialov, Iss. 46, pp. 3—62 [in Ukrainian].

16. Naidich, Yu. V., Sydorenko, T. V. (2003). Аdhesion and contact interaction of metal melts with barium titanate and other perovsictic materials. Kiyv: Nauk. dumka, 156 р. [in Russian].

17. Ommer, M., Klotz, U. E., Fallheier I. (2009). Wetting phenomena in Ag-based contact materials. VI Int. conf. High Temperature Capillarity, Athens, 158 p.

18. Durov, O. V. (2004). Wetting and contact interaction of materials based on zirconium oxide with metal melts. Avtoreferat diss. na soiskanie stepeny kand. chimicheskix nauk, Kyyv, 26 p. [in Russian].

19. Shen, P., Fujii, Н., Nogi, К. (2006). Wettability of polycrystalline rutile TiO2 by molten Al in different atmospheres. Acta Mater., Vol. 54, pp. 1559—1569. http://dx.doi.org/10.1016/j.actamat.2005.11.024

20. Bursian, E. V. (1974). Nonlinear crystal (barium titanate). Moskva: Nauka, 295 p. [in Russian].

21. Naidich, Yu. V. (1981). The wettability of solids by liquid metals. Progress in Surface and Membrane Science, New York: Academic Press, Inc., pp. 353—484. http://dx.doi.org/10.1016/B978-0-12-571814-1.50011-7