On the Interface between Plasma Fluorocarbon Films and 316L Stainless Steel Substrates for Advanced Coated Stents

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Abstract:

As intravascular biomedical devices, metallic stents are particularly susceptible to corrosion induced by the physiological environment, causing the degradation of mechanical properties and leading to the release of toxic and carcinogenic ions from the SS316L bulk. Therefore, several works have been focused on the development of an ultra-thin fluorocarbon coating that could act both as a drug-carrier for in-stent restenosis and as an anti-corrosion barrier. However, the increase of the corrosion performance was limited by the inevitable permeability of the coating, which exposed some of the sensitive interfacial region to the corrosive environment. Indeed, in previous works, adhesion and growth rate of the film were promoted by the removal of the native oxide layer of the stainless steel which is inhomogeneous, brittle and mechanically unstable. Further refinements of the interface are therefore required in order to enhance the overall corrosion performance without compromising the fluorocarbon film properties and adhesion. Hence, the aim of this work was to enhance the corrosion behaviour of coated SS316L by the creation of a controlled interfacial oxide layer. The native oxide layer was first removed under vacuum and the bare metal surface was subjected to a plasma-reoxidation treatment. Tafel measurements were used to assess the corrosion rates of the specimens. Coated and uncoated modified interfaces were also characterized by X-Ray Photoelectron Spectroscopy (XPS) and Atomic Force Microscopy (AFM).

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117-122

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November 2011

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[1] H.M. Burt, W.L. Hunter: Adv Drug Deliver Rev Vol. 58 (2006), p.350.

Google Scholar

[2] Y. Shaulov, R. Okner, Y. Levi, N. Tal, V. Gutkin, D. Mandler, A.J. Domb: ACS Appl. Mater. Interfaces Vol. 1 (2009), p.2519.

DOI: 10.1021/am900465t

Google Scholar

[3] M. Uo, F. Watari, A. Yokoyama, H. Matsuno, T. Kawasaki: Biomaterials Vol. 22 (2001), p.677.

Google Scholar

[4] M.J. Eisenberg, K.J. Konnyu: Am J Cardiol Vol. 98 (2006), p.375.

Google Scholar

[5] S.H. Lee, J. Park, U. Kim, G. Hong, D. Shin, Y. Kim, B. Shim: Circulation Vol. 114 (2006), p.394.

Google Scholar

[6] M. Wiemer, T. Butz, W. Schmidt, K.P. Schmitz, D. Horstkotte, C. Langer: Catheter Cardio Inte Vol. 75 (2010), p.905.

Google Scholar

[7] F. Lewis, S. Turgeon, P. Chevallier, J.J. Pireaux, M. Tatoulian, D. Mantovani: Plasma Processes Polym. Vol. 7 (2010), p.309.

DOI: 10.1002/ppap.200900107

Google Scholar

[8] Materials and coatings for medical devices : cardiovascular (ASM International, Materials Park, OH 2009).

Google Scholar

[9] M. Haidopoulos, S. Turgeon, G. Laroche, D. Mantovani: Surf Coat Tech Vol. 197 (2005), p.278.

Google Scholar

[10] F. Lewis, D. Mantovani: Macromol. Mater. Eng. Vol. 294 (2009), p.11.

Google Scholar

[11] ASTM G102-89: Standard Practice for Calculation of Corrosion Rates and Related Information from Electrochemical Measurements (ASTM International, 1994).

Google Scholar

[12] I. Horcas, R. Fernández, J.M. Gómez-Rodríguez, J.G. -H. Colchero, J., A.M. Baro: Rev. Sci. Instrum. Vol. 78 (2007), p.013705.

Google Scholar

[13] C. Donik, A. Kocijan, D. Mandrino, I. Paulin, M. Jenko, B. Pihlar: Appl Surf Sci Vol. 255 (2009), p.7056.

DOI: 10.1016/j.apsusc.2009.03.041

Google Scholar

[14] J. Okado, K. Okada, A. Ishiyama, Y. Setsuhara, K. Takenaka: Surf Coat Tech Vol. 202 (2008), p.5595.

Google Scholar

[15] K. Hashimoto, K. Asami: Corrosion Science Vol. 19 (1979), p.251.

Google Scholar

[16] R. Singh, N.B. Dahotre: J. Mater. Sci. -Mater. Med. Vol. 18 (2007), p.725.

Google Scholar

[17] S.J. Lee, H.J. Lai: J. Mater. Process. Technol. Vol. 140 (2003), p.206.

Google Scholar

[18] J.C. Langevoort, I. Sutherland, L.J. Hanekamp, P.J. Gellings: Appl Surf Sci Vol. 28 (1987), p.167.

Google Scholar

[19] C.O.A. Olsson, D. Landolt: Electrochim. Acta Vol. 48 (2003), p.1093.

Google Scholar

[20] C. -C. Shih, C. -M. Shih, Y. -Y. Su, L.H.J. Su, M. -S. Chang, S. -J. Lin: Corrosion Science Vol. 46 (2004), p.427.

Google Scholar

[21] P. Hale, S. Turgeon, P. Horny, F. Lewis, N. Brack, G. Van Riessen, P. Pigram, D. Mantovani: Langmuir Vol. 24 (2008), p.7897.

DOI: 10.1021/la8002788

Google Scholar