Perfluorocarbon thin films and polymer brushes on stainless steel 316 L for the control of interfacial properties.

Langmuir

Department of Chemistry and Biochemistry, Duquesne University, 600 Forbes Avenue, Pittsburgh, Pennsylvania 15282, USA.

Published: July 2011

AI Article Synopsis

  • Perfluorocarbon thin films and polymer brushes were created on stainless steel 316L to enhance its surface properties and reduce surface energy.
  • Characterization methods like DRIFT, contact angle analysis, AFM, and CV showed that PFOA thin films significantly lowered surface energy more than PFS polymer brushes.
  • While PFOA improved hydrophobicity, PFS provided better corrosion protection, demonstrating the potential for these modifications to serve as barriers against corrosion on SS316L surfaces.

Article Abstract

Perfluorocarbon thin films and polymer brushes were formed on stainless steel 316 L (SS316L) to control the surface properties of the metal oxide. Substrates modified with the films were characterized using diffuse reflectance infrared Fourier transform spectroscopy (DRIFT), contact angle analysis, atomic force microscopy (AFM), and cyclic voltammetry (CV). Perfluorooctadecanoic acid (PFOA) was used to form thin films by self-assembly on the surface of SS316L. Polypentafluorostyrene (PFS) polymer brushes were formed by surface-initiated polymerization using SAMs of 16-phosphonohexadecanoic acid (COOH-PA) as the base. PFOA and PFS were effective in significantly reducing the surface energy and thus the interfacial wetting properties of SS316L. The SS316L control exhibited a surface energy of 38 mN/m compared to PFOA and PFS modifications, which had surface energies of 22 and 24 mN/m, respectively. PFOA thin films were more effective in reducing the surface energy of the SS316L compared to PFS polymer brushes. This is attributed to the ordered PFOA film presenting aligned CF(3) terminal groups. However, PFS polymer brushes were more effective in providing corrosion protection. These low-energy surfaces could be used to provide a hydrophobic barrier that inhibits the corrosion of the SS316L metal oxide surface.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3126892PMC
http://dx.doi.org/10.1021/la200792tDOI Listing

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