Steklo i Keramika (Glass and Ceramics). Monthly scientific, technical and industrial journal

 

ISSN 0131-9582 (Online)

  • Continuous numbering: 1156
  • Pages: 3-10
  • Share:

Heading: Not-set

The adhesive strength of the solid phase boundary in the Ge20Se80 glass–substrate (quartz glass, stainless steel, tungsten carbide) systems in the temperature range of 270…360 ?C was measured using the pull-off test for adhesion. The maximum adhesion of chalcogenide glass among the studied structural materials is observed to stainless steel with a non-nitrided surface. The wetting and adhesion of the Ge20Se80 glass melt to structural materials in the temperature range of 370…470 ?C have been investigated. The maximum adhesion of the chalcogenide melt is observed to the surface of quartz glass, the minimum is to the surface of nitrided stainless steel.
Sergey V. Mishinov – PhD, researcher, Laboratory of High-Purity Chalcogenide Glasses, G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences, Nizhny Novgorod, Russia
Alexandr P. Velmuzhov – PhD, senior researcher, Laboratory of High-Purity Chalcogenide Glasses, G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences, Nizhny Novgorod, Russia
Boris S. Stepanov – PhD, Head of the Laboratory, Laboratory of High-Purity Chalcogenide Glasses, G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences, Nizhny Novgorod, Russia
Alexey S. Stepanov – laboratory researcher, Laboratory of High-Purity Chalcogenide Glasses, G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences, Nizhny Novgorod, Russia
Roman D. Blagin – junior research assistant, Laboratory of High-Purity Chalcogenide Glasses, G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences, Nizhny Novgorod, Russia
1. Shiryaev V. S., Churbanov M. F. Trends and prospects of development of chalcogenide fibers for mid infrared transmission // J. Non-Cryst. Solids. 2013. V. 377. P. 225 – 230.
2. Klocek P., Colombo L. Index of refraction, dispersion, bandgap and light scattering in GeSe and GeSbSe glasses // J. Non-Cryst. Solids. 1987. V. 93. P. 1 – 16.
3. Yang G., Gueguen Y., Sangleboeuf J.-C., et al. Physical properties of the GexSe1?x glasses in the 0 < x < 0.42 range in correlation with their structur // J. Non-Cryst. Solids. 2013. V. 377. P. 54 – 59.
4. Houizot P., Smektala F., Couderc V., et al. Selenide glass single mode optical fiber for nonlinear optics // Opt. Mater. 2007. V. 29. P. 651 – 656.
5. Shiryaev V. S., Kosolapov A. F., Pryamikov A. D., et al. Development of technique for preparation of As2S3 glass preforms for hollow core microstructured optical fibers // J. Optoelectronics Adv. Material. 2014. V. 16. P. 1020 – 1025.
6. Cha D. H., Kim H.-J., Park H. S., et al. Effect of temperature on the molding of chalcogenide glass lenses for infrared imaging applications // Appl. Opt. 2010. V. 49. P. 1607 – 1613.
7. Abdel-Moneim N. S., Mellor C. J., Benson T. M., et al. Fabrication of stable, low optical loss rib-waveguides via embossing of sputtered chalcogenide glass-film on glass-chip // Optical and Quantum Electronics. 2015. V. 47. P. 351 – 361.
8. Cha D. H., Kim H., Hwang Y., et al. Fabrication of molded chalcogenide-glass lens for thermal imaging applications // Appl. Opt. 2012. V. 51. P. 5649 – 5656.
9. Faltejsek P., Joska Z., Pokorn? Z., et al. Effect of nitriding on the microstructure and mechanical properties of stainless steels // Manufacturing Technology. 2019. V. 19. P. 745 – 748.
10. Shaikhutdinova L. R., Khairetdinov E. F., Khusainov Yu. G. Effect of ion nitriding on the structural and phase composition and mechanical properties of high-speed steel R6M5 after SPD // Metal Science and Heat Treatment. 2020. V. 62. P. 263 – 268.
11. Friedrichs M., Kreilkamp H. Chalcogenide glass molding advances precision IR optics // Photonics Spectra. 2017. V. 51. Р. 52 – 55.
12. Guang Yang, Yann Gueguen, Jean-Christophe Sangleboeuf, Tanguy Rouxel, Catherine BoussardPl?del, et al. Physical properties of the GexSe1–x glasses in the 0 < x < 0.42 range in correlation with their structure // J. of Non-Cryst. Solids. 2013. V. 377. P. 54 – 59.
13. Shiryaev V. S., Mishinov S. V., Churbanov M. F. Investigation of adhesion of chalcogenide glasses to silica glass // J. of Non-Cryst. Solids. 2015. V. 408. P. 71 – 75.
14. Mishinov S. V., Stepanov B. S., Velmuzhov A. P., et al. Wettability of stainless steel with a Ge28Sb12Se60 glass melt and its contact adhesion strength // J. of Non-Cryst. Solids. 2022. V. 578. P. 121351.
15. Mishinov S. V., Churbanov M. F., Shiryaev V. S. Wetting, surface tension, and work of adhesion of As2S3 and As2Se3 glass melts to quartz glass // Glass Phys. Chem. 2016. V. 42. P. 713 – 720.

The article can be purchased
electronic!

PDF format

700 руб

DOI: 10.14489/glc.2024.04.pp.003-010
Article type: Research Article
Make a request

Keywords

Use the reference below to cite the publication

Mishinov S. V., Velmuzhov A. P., Stepanov B. S., Stepanov A. S., Blagin R. D. Adhesion of the Ge20Se80 glass to silica glass, stainless steel with nitrided and non-nitrided surface and tungsten carbide. Steklo i keramika. 2024:97(04):03-10. (in Russ). DOI: 10.14489/glc.2024.04.pp.003-010