Semiconductor Physics, Quantum Electronics and Optoelectronics, 22 (4) P. 444-451 (2019).
DOI: https://doi.org/10.15407/spqeo22.04.444


References

1. Dorozinsky G.V., Maslov V.P., Ushenin Yu.V. Sensory Devices Based on Surface Plasmon Resonance. Kiev, "Politekhnika", 2016.
2. Agranovich V.M., Mills D.L. Surface Polaritons. Moscow, Publishing House "Nauka", 1985 (in Russian).
3. Dorozinsky G., Doroshenko T., Maslov V. In-fluence of technological factors on sensitivity of analytical devices based on surface plasmon resonance. J. Sensor Technol. 2015. 5. P. 54-61. https://doi.org/0.4236/jst.2015.52006.
https://doi.org/10.4236/jst.2015.52006
4. Semibratov M.N. (Ed.) Technology of Optical Parts. Moscow. Publishing House "Mashino-stroyeniye", 1978 (in Russian).
5. Maslov V.P. Physical-and-technological Problems of Joining the Precise Parts for Optical-and-electronic Devices. Kyiv, National Technical University of Ukraine "KPI", 2012 (in Russian).
6. Rud' M.P. Enhancement of quality of surface electron treatment of goods from optical glass. 05.03.07. Dissertation of Candidate of Technical Sciences. Kyiv, 2009 (in Ukrainian).
7. Kanashevich G.V., Golub M.V., Antonyuk V.S., Sleptsov V.F. Perspectives of using the surface electron-beam treatment of optical and technical glasses. Visnyk of NTUU "KPI". Pryladobudu-vannya. 2014. 47, No 1. P. 127-136 (in Ukrainian).
8. Vashchenko V.A., Yatsenko V.A., Lega Yu.G., Kirichenko O.V. Basics of Electron Treatment of Goods from Optical Materials. Kyiv. Naukova dumka, 2011 (in Ukrainian).
9. Antonyuk V.S., Haidash R.P., Bilokin' S.O., Bondarenko Iu.Iu., Bondarenko M.O. Modification of nano-relief by using the method of electron-beam treatment. Cutting and tools in technological systems. 2018. Issue 88. P. 11-17 (in Ukrainian).
10. Suslov A.A., Chizhik S.A. Scanning probe microscops (review). Materialy, technologii, instrument. 1997. 3. P. 79-89 (in Russian).
11. Akhmatov A.S., Bolotich I.P., Ovcherova R.D. Investigation of optical contacts between transparent dielectrics by using the ellipsometric method. Optiko-mekhanicheskaya promyshlennost'. 1975. No 8. P. 9-10 (in Russian).
12. Gudymenko A., Krivoi S., Stanchu G., Kladko V., Safryuk N., Slobodyan N. Investigation of plasmonic film gold nano-structures by using the methods of X-ray reflectometry and diffractometry. Metallofizika i noveishiye tekhnologii. 2015. 37, No 9. P. 1215-1223 (in Russian).
https://doi.org/10.15407/mfint.37.09.1215
13. Poperenko L.V., Stashchuk V.S., Shaikevich I.A., Odarich V.A. Diagnostics of the Surface by Using Polarized Light. Kyiv, Naukova Dumka, 2007 (in Russian).
14. Kretschmann E. and Reather H. Radiative decay of nonradiative surface plasmon excited by light. Z. Naturf. 1968. 23A. P. 2135-2136.
https://doi.org/10.1515/zna-1968-1247
15. Bentor, Yinon. Chemical Element.com - Gold. Jul. 1, 2019 <http://www.chemicalelements.com/ elements/au.html>.
16. Odarich V., Poperenko L., Stel'makh Ya., Yurge-levich I., Lopatinskyi A. Optical properties titanium oxide films. Visnyk Kyivs'kogo natsional'nogo universytetu im. T.G. Shevchenka. Fizyka. 2010. No 10/11. P. 63-65 (in Ukrainian).
17. Shalabney A., Abdulhalim I. Sensitivity enhance-ment methods for surface plasmon sensors. Laser & Photonics Rev. 2011. 5, No 4. P. 571-606. https://doi.org/10.1002/lpor.201000009.
https://doi.org/10.1002/lpor.201000009
18. Johnson P.B. and Christy R.W. Optical constants of the noble metals. Phys. Rev. B. 1972. 6. P. 4370-4379. https://doi.org/10.1103/PhysRevB.6.4370.
https://doi.org/10.1103/PhysRevB.6.4370
19. Hagemann H.-J., Gudat W., and Kunz C. Optical constants from the far infrared to the x-ray region: Mg, Al, Cu, Ag, Au, Bi, C, and Al2O3. J. Opt. Soc. Am. 1975. 65. P. 742-744.
https://doi.org/10.1364/JOSA.65.000742