• Title of article

    Spatially resolved drying kinetics of multi-component solution cast films for organic electronics

  • Author/Authors

    Schmidt-Hansberg، نويسنده , , Benjamin and Baunach، نويسنده , , Michael and Krenn، نويسنده , , Joachim and Walheim، نويسنده , , Stefan and Lemmer، نويسنده , , Uli and Scharfer، نويسنده , , Philip and Schabel، نويسنده , , Wilhelm، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    7
  • From page
    509
  • To page
    515
  • Abstract
    The use of multi-component solvent/additive systems can be beneficial in the manufacturing process of organic and printed electronics because they can provide an extended degree of freedom, in terms of optimized wetting properties or their influence on the molecular ordering during solvent evaporation. For a systematic investigation of the drying process of such systems a technique for the measurement of the evaporation kinetics for micrometer to nanometer thin films is required. Since large area films are drying faster at the edges, we determine the drying kinetics spatially resolved in a linear array of 5 reflectometers simultaneously for single and binary solvent systems for polymer–fullerene (P3HT:PCBM) solutions as used in organic photovoltaic. er to design a specific drying process, e.g. combined fast and slow evaporation of high or less solving solvents, a spatial resolved numerical investigation of solvent mass transfer is addressed. A numerical approach including the effect of a moving drying front shows reasonable agreement for single and binary solvent systems with spatially resolved experimental data. The effect of the moving drying front accelerates the drying kinetics at a distinct position as the front approaches and must also be considered for integral measurements (e.g. gravimetric experiments).
  • Keywords
    Drying front , Organic solar cells , In situ reflectometry , Solvent mixtures , Film formation , Polymer–fullerene
  • Journal title
    Chemical Engineering and Processing: Process Intensification
  • Serial Year
    2011
  • Journal title
    Chemical Engineering and Processing: Process Intensification
  • Record number

    1610625