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Assessing the Effect of CeO Nanoparticles as Corrosion Inhibitor in Hybrid Biobased Waterborne Acrylic Direct to Metal Coating Binders. | LitMetric

AI Article Synopsis

  • Researchers incorporated CeO nanoparticles into eco-friendly water-based binders made from up to 70% biobased materials to enhance anticorrosion properties for metal coatings.
  • The binders, created through a specific polymerization process, formed a protective phosphatization layer on steel, preventing flash rusting.
  • Tests showed that the resulting hybrid polymer film exhibited strong resistance to corrosion and effective inhibition in saline environments, highlighting the potential for sustainable anticorrosion coatings.

Article Abstract

CeO nanoparticles were incorporated in waterborne binders containing high biobased content (up to 70%) in order to analyze the anticorrosion performance for direct to metal coatings. Biobased binders were synthesized by batch miniemulsion polymerization of 2-octyl acrylate and isobornyl methacrylate monomers using a phosphate polymerizable surfactant (Sipomer PAM200) that lead to the formation of phosphate functionalized latexes. Upon the direct application of such binders on steel, the functionalized polymer particles were able to interact with steel, creating a thin phosphatization layer between the metal and the polymer and avoiding flash rust. The in situ incorporation of the CeO nanoparticles during the polymerization process led to their homogeneous distribution in the final polymer film, which produced outstanding anticorrosion performance according to the Electrochemical Impedance Spectroscopy measurements. In fact, steel substrates coated with the hybrid polymer film (30-40 µm thick) showed high barrier corrosion resistance after 41 days (~1000 h) of immersion in NaCl water solution and active inhibition capabilities thanks to the presence of the CeO nanoparticles. This work opens the door to the fabrication of sustainable hybrid anticorrosion waterborne coatings.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7999048PMC
http://dx.doi.org/10.3390/polym13060848DOI Listing

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