• DocumentCode
    1122926
  • Title

    Plasma Polymer Film as a Model Interlayer for Polymer Composites

  • Author

    Cech, Vladimir

  • Author_Institution
    Inst. of Mater. Chem., Brno Univ. of Technol.
  • Volume
    34
  • Issue
    4
  • fYear
    2006
  • Firstpage
    1148
  • Lastpage
    1155
  • Abstract
    In this paper, a plasma-enhanced chemical vapor deposition process that is useful for the preparation of thin and ultrathin films of controlled mechanical properties is identified. Plasma-polymerized films of vinyltriethoxysilane were deposited on planar substrates and analyzed using nanoindentation measurements of the Young´s modulus of the films, adhesion bonding at the film/glass interface, chemical composition, and structure. The modulus of the plasma polymer film can be controlled simply by the effective power fed into the capacitive-coupled low-pressure plasma. The single film was tested as an interlayer in glass fiber (GF)/polyester composites. GF bundles were surface modified by plasma polymer in a unique technological system, enabling continuous processing of the bundle. GF/polyester composites in the form of short beams were manufactured using the coated fibers and tested according to the standard test method. By increasing the interlayer modulus, the short-beam strength was enhanced up to 112% compared with the untreated GFs, and this enhancement was also supported by an improvement in interfacial bonding
  • Keywords
    Young´s modulus; adhesion; beams (structures); chemical analysis; composite material interfaces; glass fibre reinforced plastics; indentation; mechanical strength; mechanical testing; plasma CVD; plasma CVD coatings; polymer films; polymerisation; silicon compounds; RF helical coupling pulsed-plasma system; Si; SiO2; Young´s modulus; adhesion bonding; capacitive-coupled low-pressure plasma; chemical composition; film structure; film-glass interface; glass fiber bundle coating; glass fiber-polyester composite interlayer; interfacial bonding; model interlayer; nanoindentation; planar glass substrate; plasma polymer film; plasma-polymerized vinyltriethoxysilane film; polymer composites; short-beam strength; silicon substrate; standard test method; ultrathin films; Bonding; Chemical analysis; Chemical vapor deposition; Glass; Optical fiber testing; Plasma chemistry; Plasma materials processing; Plasma measurements; Plasma properties; Polymer films; Glass fiber (GF); interface/interphase; mechanical properties; plasma-enhanced chemical vapor deposition (PE CVD); thin film;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2006.877741
  • Filename
    1673499