4.7 Article

Highly permeable and mechanically durable forward osmosis membranes prepared using polyethylene lithium ion battery separators

Journal

JOURNAL OF MEMBRANE SCIENCE
Volume 544, Issue -, Pages 213-220

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.memsci.2017.09.022

Keywords

Polyethylene; Thin film composite membranes; Interfacial polymerization; Forward osmosis; Lithium ion battery separator

Funding

  1. Basic Science Research Program through National Research Foundation of Korea (NRF) - Ministry of Education [2016R1D1A1B03933552]
  2. Korean Ministry of Environment as Global Top Project [2016002100007]
  3. Korea University Grant
  4. National Research Foundation of Korea [2016R1D1A1B03933552] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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A porous polyethylene (PE) membrane commercialized as a lithium ion battery separator was utilized as a support for the fabrication of a highly permeable and mechanically durable thin film composite (TFC) forward osmosis (FO) membrane. The highly open and interconnected pore structure of the PE support combined with its thin thickness (similar to 8 mu m) is beneficial for mitigating internal concentration polarization, thus enhancing FO water flux. The proper plasma treatment on the PE support and the use of a surfactant enabled the stable formation of a polyamide permselective layer on top of the support via a commercial interfacial polymerization process. The prepared PE-supported TFC (PE-TFC) membrane exhibited a remarkably high FO performance (similar to 3.5 times higher water flux and similar to 35% lower specific salt flux than the commercial HTI-CTA membrane in FO mode) due to its significantly low structural parameter (similar to 161 mu m) and high permselectivity. The PE-TFC membrane also had superior mechanical properties compare to the much thicker commercial FO membrane due to the exceptionally high mechanical integrity of the PE support, ensuring the mechanically stable membrane operation. The proposed strategy offers a new material platform for FO membranes with strong commercial potential and excellent performance and durability.

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