• Title of article

    Butane isomer transport properties of 6FDA–DAM and MFI–6FDA–DAM mixed matrix membranes

  • Author/Authors

    Junqiang Liu، نويسنده , , Tae-Hyun Bae، نويسنده , , WULIN QIU?، نويسنده , , Shabbir Husain، نويسنده , , Sankar Nair، نويسنده , , Christopher W. Jones، نويسنده , , Ronald R. Chance، نويسنده , , William J. Koros، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2009
  • Pages
    7
  • From page
    157
  • To page
    163
  • Abstract
    For the first time, we report the C4s’ transport properties: solubility, diffusivity, permeability in 6FDA–DAM polymer, one of most permeable glassy polymers with significant nC4 vs. iC4 selectivity. An nC4 permeability of 3.7 Barrer, and nC4/iC4 ideal selectivity of 21 was found in pure 6FDA–DAM polymer membrane. Mixed matrix films were successfully fabricated using a 6FDA–DAM as the matrix, with up to 35 wt% loading of MFI, modified by a two-step Grignard treatment (GT) that produced Mg(OH)2 whiskers on the surface of the MFI particles. The permeability of nC4 more than doubled; however, the selectivity for the C4s remained the same. Permeation of mixed matrix films with impermeable GT-uncalcined-MFI agree with Maxwell modeling of films with an impermeable solid loading, thereby supporting the existence of a defect-free interface between MFI particles and the polymer matrix. This indicates that the MFI is too permeable to optimally match the properties of the 6FDA–DAM, which is one of the most permeable selective matrix polymers available. It appears unlikely that any currently known, adequately selective glassy polymer can match the high permeability of nC4 in MFI to enable development of promising composite membrane for the C4s separation based on MFI. Therefore a smaller pore size zeolite is required for a better match.
  • Keywords
    Butane isomer separation , Mixed matrix membrane , High silica MFI , Grignard treatment
  • Journal title
    Journal of Membrane Science
  • Serial Year
    2009
  • Journal title
    Journal of Membrane Science
  • Record number

    1354773