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Evaluation of protective properties of silane coatings modified with rhodanine

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PL
Ocena właściwości ochronnych powłok silanowych modyfikowanych rodaniną
Języki publikacji
EN
Abstrakty
EN
The protective, anticorrosion properties of silane and polyrhodanine based bilayer coatings IBTES/pRh prepared on X20Cr13 stainless steel substrate are evaluated in this paper. Isobutyltriethoxysilane (IBTES) films were deposited by dip-coating method on steel substrates and stored in air (“aged”). Polyrhodanine (pRh) coatings were electrodeposited using the cyclic voltammetry technique. The protective properties of IBTES/pRh coatings were investigated in chloride ions solution. It was found that bilayer coatings IBTES/pRh exhibit more effective corrosion protection compared to single component pRh or IBTES coatings.
PL
W niniejszej pracy dokonano oceny właściwości ochronnych dwuwarstwowych powłok na bazie silanu i polirodaniny IBTES/pRh wytworzonych na powierzchni stali nierdzewnej X20Cr13. Filmy silanowe IBTES na podłożu stalowym osadzano metodą zanurzeniową, a następnie przechowywano w powietrzu („starzono”). Powłoki z polirodaniny pRH osadzano stosując technikę woltamperometrii cyklicznej. Właściwości ochronne powłok IBTES/pRH badano w roztworze jonów chlorkowych. Stwierdzono, że powłoki dwuwarstwowe IBTES/pRH zapewniają skuteczniejszą ochronę przed korozją w porównaniu z jednowarstwowymi powłokami z polirodaniny pRh lub silanowymi IBTES.
Rocznik
Tom
Strony
334--336
Opis fizyczny
Bibliogr. 32 poz., rys., wykr.
Twórcy
autor
  • Division of Chemistry, Faculty of Production Engineering and Materials Technology, Czestochowa University of Technology
Bibliografia
  • [1] Abdallah M. 2002. ”Rhodanine azosulpha drugs as corrosion inhibitors for corrosion of 304 stainless steel in HCl solution”. Corrosion Science 44 : 717–728.
  • [2] Altunbas E., R. Solmaz, G. Kardas. 2010. ”Corrosion behaviour of polyrhodanine coated copper electrode in 0.1 M H2SO4 solution”. Materials Chemistry and Physics 121 : 354–358.
  • [3] Chico B, J.C. Galvan, D. de la Fuente, M. Morcillo. 2007. ”Electrochemical impedance spectroscopy study of the effect of curing time on the early barrier properties of silane systems applied on steel substrates”. Progress in Organic Coatings 60 : 45–53.
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  • [6] Hasanov R., S. Bilgic. 2009. ”Monolayer and bilayer conducting polymer coatings for corrosion protection of steel in 1 M H2SO4 solution”. Progress in Organic Coatings 64 : 435–445.
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  • [8] Kardas G., R. Solmaz. 2007. ”Synthesis and characterization of a new conducting polymer: polyrhodanine”. Applied Surface Science 253 : 3402–3407.
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  • [13] Montemor M.F., M.G.S. Ferreira. 2008. ”Analytical characterization of silane films modified with cerium activated nanoparticles and its relation with the corrosion protection of galvanised steel substrates”. Progress in Organic Coatings 63 : 330–337.
  • [14] Ooij van W.J., D. Zhu, G. Prasad, S. Jayaseelan, Y. Fu, N. Teredesai. 2000. ”Silane based chromate replacements for corrosion control, paint adhesion, and rubber bonding”. Surface Engineering 16 : 386–396.
  • [15] Ooij van W.J., D. Zhu. 2001. ”Electrochemical impedance spectroscopy of bis- [triethoxysilylpropyl]tetrasulfide on Al-2024-T3 substrates”. Corrosion 157 : 413–427.
  • [16] Ooij van W.J., D.Q. Zhu, G. Prasad, S. Jayaseelan, Y. Fu, N. Teredesai. 2000. ”Silane-chromate replacement for corrosion control, paint adhesion and rubber bonding”. Surface Engineering 16 : 386–396.
  • [17] Ooij van W.J., J. Song, V. Subramanian. 1997. ”Silane-based pretreatments of aluminum and it alloys as chromate alternatives”. ATB Metallurgie 37 : 137–142.
  • [18] Palanivel V., Y. Huang, W.J. van Ooij. 2005. ”Effects of addition of corrosion inhibitors to silane films on the performance of AA2024-T3 in a 0.5 M NaCl solution”. Progress in Organic Coatings 53 : 153–168.
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  • [22] Solmaz R. 2014. ”Investigation of adsorption and corrosion inhibition of mild steel in hydrochloric acid solution by5-(4-Dimethylaminobenzylidene)rhodanine”. Corrosion Science 79 : 169–176.
  • [23] Solmaz R., E. Altunbas, A. Doner, G. Kardas. 2011. ”The investigation of synergistic inhibition effect of rhodanine and iodide ion on the corrosion of copper in sulphuric acid solution”. Corrosion Science 53 : 3231–3240.
  • [24] Solmaz R., G. Kardas, B. Yazıcı, M. Erbil. 2007. ”The rhodanine inhibition effect on the corrosion of a mild steel in acid along the exposure time”. Protection of Metals 43 : 476–482.
  • [25] Solmaz R., G. Kardas, B. Yazıcı. 2005. ”Inhibition effect of rhodanine for corrosion of mild steel in hydrochloric acid solution”. Protection of Metals 41 : 581–585.
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  • [28] Tan C.K., D.J. Blackwood. 2003. ”Corrosion protection by multilayered conducting polymer coatings”. Corrosion Science 45 : 545–557.
  • [29] Trabelsi W., P. Cecilio, M.G.S. Ferreira, K. Yasakau. 2007. ”Surface evaluation and electrochemical behaviour of doped silane pre-treatments on galvanized steel substrates”. Progress in Organic Coatings 59 : 214–223.
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  • [31] Yuce A.O., R. Solmaz, G. Kardas. 2012. ”Investigation of inhibition effect of rhodanine-N-acetic acid on mild steel corrosion in HCl solution”. Materials Chemistry and Physics 131 : 615–620.
  • [32] Zucchi F., A. Frignani, V. Grassi, A. Balbo, G. Trabanelli. 2008. ”Organo-silane coatings for AZ31 magnesium alloy corrosion protection”. Materials Chemistry and Physics 110 : 263–268.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d32b147b-29d4-4db6-8ef1-d880f11365fb
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