Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation

Pervaporation with a "reverse-selective" (hydrophobic) membrane is a promising technology for the energy-efficient separation of alcohols from dilute alcohol-water streams, such as those formed in the production of biofuels. Pervaporation depends on the selectivity and throughput of the me...

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Main Author: McFadden, Kathrine D.
Published: Georgia Institute of Technology 2011
Subjects:
Online Access:http://hdl.handle.net/1853/39538
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-395382013-01-07T20:37:25ZReverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separationMcFadden, Kathrine D.Ethanol/water pervaporationHydrophobic pervaporationMixed-matrix membraneComposite membranePervaporationBiomass energyGas separation membranesZeolitesNanocompositesPervaporation with a "reverse-selective" (hydrophobic) membrane is a promising technology for the energy-efficient separation of alcohols from dilute alcohol-water streams, such as those formed in the production of biofuels. Pervaporation depends on the selectivity and throughput of the membrane, which in turn is highly dependent on the membrane material. A nanocomposite approach to membrane design is desirable in order to combine the advantages and eliminate the individual limitations of previously-reported polymeric and zeolitic membranes. In this work, a hollow-fiber membrane composed of a thin layer of polymer/zeolite nanocomposite material on a porous polymeric hollow fiber support is developed. The hollow fiber geometry offers considerable advantages in membrane surface area per unit volume, allowing for easier scaling and higher throughput than flat-film membranes. Poly(dimethyl siloxane) (PDMS) and pure-silica MFI zeolite (silicalite-1) were investigated for these membranes. Iso-octane was used to dilute the dope solution to provide thinner coatings. Previously-spun non-selective Torlon hollow fibers were used as the support layer for the nanocomposite coatings. To determine an acceptable method for coating fibers with uniform, defect-free coatings, flat-film membranes (0 to 60 wt% MFI on a solvent-free basis) and hollow-fiber membranes (0 and 20 wt% MFI) were fabricated using different procedures. Pervaporation experiments were run for all membranes at 65C with a 5 wt% ethanol feed. The effects of membrane thickness, fiber pretreatment, coating method, zeolite loading, and zeolite surface treatment on membrane pervaporation performance were investigated.Georgia Institute of Technology2011-07-06T16:46:38Z2011-07-06T16:46:38Z2010-04-08Thesishttp://hdl.handle.net/1853/39538
collection NDLTD
sources NDLTD
topic Ethanol/water pervaporation
Hydrophobic pervaporation
Mixed-matrix membrane
Composite membrane
Pervaporation
Biomass energy
Gas separation membranes
Zeolites
Nanocomposites
spellingShingle Ethanol/water pervaporation
Hydrophobic pervaporation
Mixed-matrix membrane
Composite membrane
Pervaporation
Biomass energy
Gas separation membranes
Zeolites
Nanocomposites
McFadden, Kathrine D.
Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
description Pervaporation with a "reverse-selective" (hydrophobic) membrane is a promising technology for the energy-efficient separation of alcohols from dilute alcohol-water streams, such as those formed in the production of biofuels. Pervaporation depends on the selectivity and throughput of the membrane, which in turn is highly dependent on the membrane material. A nanocomposite approach to membrane design is desirable in order to combine the advantages and eliminate the individual limitations of previously-reported polymeric and zeolitic membranes. In this work, a hollow-fiber membrane composed of a thin layer of polymer/zeolite nanocomposite material on a porous polymeric hollow fiber support is developed. The hollow fiber geometry offers considerable advantages in membrane surface area per unit volume, allowing for easier scaling and higher throughput than flat-film membranes. Poly(dimethyl siloxane) (PDMS) and pure-silica MFI zeolite (silicalite-1) were investigated for these membranes. Iso-octane was used to dilute the dope solution to provide thinner coatings. Previously-spun non-selective Torlon hollow fibers were used as the support layer for the nanocomposite coatings. To determine an acceptable method for coating fibers with uniform, defect-free coatings, flat-film membranes (0 to 60 wt% MFI on a solvent-free basis) and hollow-fiber membranes (0 and 20 wt% MFI) were fabricated using different procedures. Pervaporation experiments were run for all membranes at 65C with a 5 wt% ethanol feed. The effects of membrane thickness, fiber pretreatment, coating method, zeolite loading, and zeolite surface treatment on membrane pervaporation performance were investigated.
author McFadden, Kathrine D.
author_facet McFadden, Kathrine D.
author_sort McFadden, Kathrine D.
title Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
title_short Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
title_full Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
title_fullStr Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
title_full_unstemmed Reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
title_sort reverse-selective zeolite/polymer nanocomposite hollow fiber membranes for pervaporative biofuel/water separation
publisher Georgia Institute of Technology
publishDate 2011
url http://hdl.handle.net/1853/39538
work_keys_str_mv AT mcfaddenkathrined reverseselectivezeolitepolymernanocompositehollowfibermembranesforpervaporativebiofuelwaterseparation
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