• DocumentCode
    1782626
  • Title

    Fast growth of polycrystalline graphene by chemical vapor deposition of ethanol on copper

  • Author

    Faggio, Giuliana ; Capasso, Andrea ; Malara, Angela ; Leoni, Enrico ; Nigro, Maria Arcangela ; Santangelo, Saveria ; Messina, Giacomo ; Dikonimos, Theodoros ; Buonocore, Francesco ; Lisi, Nicola

  • Author_Institution
    DIIES, Univ. “Mediterranea” of Reggio Calabria, Reggio Calabria, Italy
  • fYear
    2014
  • fDate
    12-15 Oct. 2014
  • Firstpage
    69
  • Lastpage
    72
  • Abstract
    High conductive graphene films can be grown on metal foils by chemical vapor deposition (CVD). We here analyzed the use of ethanol, an economic precursor, which results also safer than commonly-used methane. A comprehensive range of process parameters were explored in order to obtain graphene films with optimal characteristics in view of their use in optoelectronics and photovoltaics. Commercially-available and electro-polished copper foils were used as substrates. By finely tuning the CVD conditions, we obtained few-layer (2-4) graphene films with good conductivity (~500 Ohm/sq) and optical transmittance around 92-94% at 550 nm on unpolished copper foils. The growth on electro-polished copper provides instead predominantly mono-layer films with lower conductivity (≥1000 Ohm/sq) and with a transmittance of 97.4% at 550 nm. As for the device properties, graphene with optimal properties as transparent conductive film were produced by CVD on standard copper with specific process conditions.
  • Keywords
    chemical vapour deposition; electrolytic polishing; graphene; monolayers; thin films; transparency; C-Cu; CVD conditions; Cu; chemical vapor deposition; conductive graphene films; economic precursor; electropolishing; fast growth; few-layer graphene films; metal foils; monolayer films; optical transmittance; optimal properties; optoelectronics; photovoltaics; polycrystalline graphene; transparent conductive film; unpolished copper foils; wavelength 550 nm; Chemicals; Conductivity measurement; Graphene; Optical devices; Optical films; Optical imaging; chemical vapor deposition; electropolished Cu; ethanol; graphene;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nanotechnology Materials and Devices Conference (NMDC), 2014 IEEE 9th
  • Conference_Location
    Aci Castello
  • Type

    conf

  • DOI
    10.1109/NMDC.2014.6997424
  • Filename
    6997424