4.8 Article

High Performance Thin-Film Composite Forward Osmosis Membrane

Journal

ENVIRONMENTAL SCIENCE & TECHNOLOGY
Volume 44, Issue 10, Pages 3812-3818

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/es1002555

Keywords

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Funding

  1. Environment and Water Industrial Development Council of Singapore
  2. WaterCAMPWS
  3. Science and Technology Center of Advanced Materials for the Purification of Water with Systems under the National Science Foundation [CTS-0120978]
  4. Oasys Water Inc.
  5. KAUST-Cornell Center

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Recent studies show that osmotically driven membrane processes may be a viable technology for desalination, water and wastewater treatment, and power generation. However, the absence of a membrane designed for such processes is a significant obstacle hindering further advancements of this technology. This work presents the development of a high performance thin-film composite membrane for forward osmosis applications. The membrane consists of a selective polyamide active layer formed by interfacial polymerization on top of a polysulfone support layer fabricated by phase separation onto a thin (40 mu m) polyester nonwoven fabric. By careful selection of the polysulfone casting solution (i.e., polymer concentration and solvent composition) and tailoring the casting process, we produced a support layer with a mix of finger-like and spongelike morphologies that give significantly enhanced membrane performance. The structure and performance of the new thin-film composite forward osmosis membrane are compared with those of commercial membranes. Using a 1.5 M NaCl draw solution and a pure water feed, the fabricated membranes produced water fluxes exceeding 18 L m(2-)h(-1), while consistently maintaining observed salt rejection greater than 97%. The high water flux of the fabricated thin-film composite forward osmosis membranes was directly related to the thickness, porosity, tortuosity, and pore structure of the polysulfone support layer. Furthermore, membrane performance did not degrade after prolonged exposure to an ammonium bicarbonate draw solution.

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