Molecular structure and morphology of surface layers of polyimide-fluoropolymer film treated by glow discharge plasma
Problemy fiziki, matematiki i tehniki, no. 1 (2011), pp. 40-47.

Voir la notice de l'article provenant de la source Math-Net.Ru

The change of morphology and molecular structure of surface layers of polyimide-fluoropolymer film after low-frequency glow discharge plasma treatment by the method of infrared spectroscopy and atomic force microscopy is determined. In case polyimide layer treatment occur mainly layer-by-layer etching and formed layers have cyclic variations of polar and disperse fraction of surface energy. The etching of molecules aligned primary parallel to the surface of a substrate in case fluoropolymer layer treatment is shown.
Keywords: low-frequency glow discharge plasma, infrared spectroscopy, molecular orientation, Kelvin mode of scanning probe microscopy.
Mots-clés : polyimide-fluoropolymer film
@article{PFMT_2011_1_a5,
     author = {O. A. Sarkisov and A. A. Rogachev and A. V. Rogachev and A. I. Egorov},
     title = {Molecular structure and morphology of surface layers of polyimide-fluoropolymer film treated by glow discharge plasma},
     journal = {Problemy fiziki, matematiki i tehniki},
     pages = {40--47},
     publisher = {mathdoc},
     number = {1},
     year = {2011},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/PFMT_2011_1_a5/}
}
TY  - JOUR
AU  - O. A. Sarkisov
AU  - A. A. Rogachev
AU  - A. V. Rogachev
AU  - A. I. Egorov
TI  - Molecular structure and morphology of surface layers of polyimide-fluoropolymer film treated by glow discharge plasma
JO  - Problemy fiziki, matematiki i tehniki
PY  - 2011
SP  - 40
EP  - 47
IS  - 1
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/PFMT_2011_1_a5/
LA  - ru
ID  - PFMT_2011_1_a5
ER  - 
%0 Journal Article
%A O. A. Sarkisov
%A A. A. Rogachev
%A A. V. Rogachev
%A A. I. Egorov
%T Molecular structure and morphology of surface layers of polyimide-fluoropolymer film treated by glow discharge plasma
%J Problemy fiziki, matematiki i tehniki
%D 2011
%P 40-47
%N 1
%I mathdoc
%U http://geodesic.mathdoc.fr/item/PFMT_2011_1_a5/
%G ru
%F PFMT_2011_1_a5
O. A. Sarkisov; A. A. Rogachev; A. V. Rogachev; A. I. Egorov. Molecular structure and morphology of surface layers of polyimide-fluoropolymer film treated by glow discharge plasma. Problemy fiziki, matematiki i tehniki, no. 1 (2011), pp. 40-47. http://geodesic.mathdoc.fr/item/PFMT_2011_1_a5/

[1] Yu. V. Lipin i dr., Tekhnologiya vakuumnoi metallizatsii polimernykh materialov, Gomel, 1994, 206 pp.

[2] S. S. Sidorskii, A. V. Rogachev, “Sovershenstvovanie tekhnologii aktivatsionnoi obrabotki polimerov pri ikh vakuumnoi metallizatsii”, Fizika i tekhnologiya tonkoplenochnykh materialov, 1994, no. 2, 11–15

[3] B. C. Danilin, V. Yu. Kipeev, Primenenie nizkotemperaturnoi plazmy dlya travleniya i ochistki materialov, Energoatomizdat, M., 1987, 240 pp.

[4] A. I. Drachev et al., “Formation of charge states on the surface of a laminated polyimide-fluoropolymer film by glow-discharge treatment”, High Energy Chemistry, 34:3 (2000), 172–176 | DOI

[5] A. A. Kuznetsov, A. B. Gilman, A. I. Drachev, “Modification of polyimide films by low-frequency glow discharge”, Vide: Science, Technique et Applications, 53:84, suppl. 1 (1997), 372–373

[6] A. V. Koryukin, Metallopolimernye pokrytiya polimerom, Khimiya, M., 1983, 180 pp.

[7] O. A. Sarkisov i dr., “Morfologiya i molekulyarnaya struktura poliuretanovykh plenok, obrabotannykh v plazme tleyuschego razryada”, Zhurnal prikladnoi spektroskopii, 74:6 (2007), 785–789

[8] M. S. Piskarev i dr., “Vozdeistvie razryada postoyannogo toka na plenki PTFE”, Khimiya vysokikh energii, 42:2 (2008), 169- 172

[9] M. S. Piskarev i dr., “Modifitsirovanie poverkhnosti plenok poliftrolefinov v tleyuschem razryade postoyannogo toka”, Fundamentalnye problemy radioelektronnogo priborostroeniya, v. 2, ed. A. S. Sigov, Energoatomizdat, M., 2010, 274–278

[10] V. P. Kazachenko i dr., “Morfologiya, struktura i svoistva granichnykh sloev, obrazuyuschikhsya pri vakuumnoi metallizatsii stekloplastikov”, Konstruktsii iz kompozitsionnykh materialov, 2001, no. 3, 21–27

[11] N. J. Harrick, Internal Refection Spectroscopy, Wiley, New York, 1967, 480 pp.

[12] G. Masetti et al., “Conformational Order and Disorder in Poly (tetrafluoroethylene) from the Infrared Spectrum”, Macromolecules, 6:5 (1973), 700–707 | DOI

[13] Giuseppe Zerbi, Mario Sacchi, “Dynamics of Polymers as Structurally Disordered Systems. Vibrational Spectrum and Structure of Poly (tetrafluoroethylene)”, Macromolecules, 6:5 (1973), 692–699 | DOI

[14] Lukas K. Tamm, Suren F. Tatulian, “Infrared spectroscopy of proteins and peptides in lipid bilayers”, Quarterly Reviews of Biophysics, 30:4 (1997), 365–429 | DOI | MR

[15] A. F. Runge, S. S. Saavedra, S. B. Mendes, “Combination of polarized TIRF and ATR spectroscopies for determination of the second and fourth order parameters of molecular orientation in thin films and construction of an orientation distribution based on the maximum entropy method”, J. Phys. Chem. B, 110:13 (2006), 6721–6731 | DOI

[16] A. A. Rogachev et al., “The structure and molecular orientation of polytetrafluoroethylene coatings deposited from active gas phase”, Applied Surface Science, 255:15 (2009), 6851–6856 | DOI

[17] B. Bhushan, S. Kawata (eds.), Applied Scanning Probe Methods VI Characterization, Springer-Verlag, Berlin–Heidelberg, 2007, 325 pp.

[18] Lee Lieng-Huang, “Roles of molecular interactions in adhesion, adsorption, contact angle and wettability”, Journal of Adhesion Science and Technology, 7:6 (1993), 583–634 | DOI

[19] N. Vandencasteele, F. Reniers, “Surface characterization of plasma-treated PTFE surfaces: an OES, XPS and contact angle study”, Surf. Interface Anal., 36:2 (2004), 1027–1031 | DOI