The results are given of research into the development of glazing material based on organic glass with a heat-shielding optical coating, as well as the results of investigating their optical properties and their resistance to climatic effects.
Get full access to this article
View all access options for this article.
References
1.
KablovE.N.Strategic directions in the development of materials and technologies for their processing for the period up to 2030. Aviats. Mater. Tekhnol., (S): 7–17 (2012).
2.
KablovE.N.Modern materials – the basis of innovative modernisation of Russia. Met. Evrazii, (3): 10–15 (2012).
3.
KislyakovP. P.The production and application of polymer film with a transparent electrically conductive coating based on indium oxide alloyed with tin. Trudy VIAM, (11): 06 (2013) (viam-works.ru).
4.
Russian Patent 2190692. A low-emission coating applied to a transparent substrate, publ. 10.10.2002.
BogatovV.A.The production of a gradient coating of aluminium oxynitride by reactive magnetron sputtering. Aviats. Mater. Tekhnol., (3): 19–21 (2010).
7.
KryninA.G., and KhokhlovYu. A.The optical characteristics of heat-stabilised polyethylene terephthalate film used for functional glazing materials. Aviats. Mater. Tekhnol., (4): 31–34 (2013).
8.
BogatovV.A.The influence of the magnetron sputtering regimes on the opticophysical properties of copper nanocoatings. Nanomater. Nanotekhnol., (4): 45–53 (2011).
9.
KhokhlovYu. A.The optical constants of thin films of indium oxide alloyed with tin, deposited on polyethylene terephthalate film by reactive magnetron sputtering (near-infrared region of spectrum). Aviats. Mater. Tekhnol., (1): 24–28 (2013).
10.
RodriguezJ.Thickness dependence of the optical properties of sputter deposited Ti oxide films. Thin Solid Films, 365: 119–125 (2010).
11.
ZakharovA.N.The properties of low-emission coatings based on Ag and Cu, applied on polymer film by magnetron sputtering. Perspekt. Mater., (2): 62–70 (2012).
12.
PutilinE.S.Optical Coatings. Textbook.GUITMO, St Petersburg, 230 pp. (2005).
13.
BerningP.H.Theory and calculations of optical thin films, in Physics of Thin Films, Vol. 1, ed. by HassG.Academic Press, New York, NY, pp. 69–121 (1963).
14.
KrylovaT.N.Interference Coatings.Mashinostroenie, Leningrad, pp. 30–34 (1973).
15.
GrishinS.D.Determination of the ion energy in discharge plasma with azimuthal electron drift. Fiz. Khim. Obrabotki Mater., (2): 131–132 (1986).
16.
GrishinS.D.Determining the electron temperature of low-concentration magnetised plasma by spectral methods using support probe measurements. Teplofiz. Vys. Temp., 24(2): 398–400 (1986).
17.
DanilinB.S., and SyrchinV.K.Magnetron Sputtering Systems.Radio i Svyaz', Moscow, 73 pp. (1982).
18.
KhokhlovYu. A.Optical Coating Technology, MGTU, Moscow, 81 pp. (2004).
19.
Solov'evA.A.The characteristics of plasma of an unbalanced magnetron sputtering system and their influence on the parameters of ZnO:Ga coatings. Fiz. Khim. Obrab. Mater., (2): 58–65 (2009).
20.
KhokhlovYu. A.Stabilisation of reactive magnetron deposition by a magnetic field. Fiz. Khim. Obrab. Mater., (5): 46–50 (2012).
21.
JagerS.Surf. Coat. Technol., 1304–1314 (2008).
22.
BrauerG.Magnetron sputtering – milestones of 30 years. Vacuum, 84: 1354–1359 (2010).
23.
GrishinS.D.Calculating the energy characteristics of an accelerator with azimuthal electron drift. Fiz. Plasmy, 11(2): 206–210 (1985).
24.
BogatovV.A.The effect of treatment in a discharge with closed electron drift on the adhesion properties and strength of adhesive joints of polymers. Klei. Germetiki. Tekhnologii, (9): 27–31 (2011).