4.8 Review

Silicate-based polymer-nanocomposite membranes for polymer electrolyte membrane fuel cells

Journal

PROGRESS IN POLYMER SCIENCE
Volume 37, Issue 6, Pages 842-869

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.progpolymsci.2011.11.002

Keywords

Proton-exchange membrane fuel cell; Polymeric membrane; Silicate; Water retention; Proton conductivity; Cell performance

Funding

  1. Converging Research Center Program [20111(000776)]
  2. Human Resource Training Project for Regional Innovation
  3. World Class University (WCU) program [R31-20029]
  4. Ministry of Education, Science and technology (MEST)
  5. National Research Foundation (NRF) of Korea

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Proton-exchange membrane fuel cells have emerged as a promising emission free technology to fulfill the existing power requirements of the 21st century. Nafion (R) is the most widely accepted and commercialized membrane to date and possesses excellent electrochemical properties below 80 degrees C, under highly humidified conditions. However, a decrease in the proton conductivity of Nafion (R) above 80 degrees C and lower humidity along with high membrane cost has prompted the development of new membranes and techniques. Addition of inorganic fillers, especially silicate-based nanomaterials, to the polymer membrane was utilized to partially overcome the aforementioned limitations. This is because of the lower cost, easy availability, high hydrophilicity and higher thermal stability of the inorganic silicates. Addition of silicates to the polymer membrane has also improved the mechanical, thermal and barrier properties, along with water uptake of the composite membranes, resulting in superior performance at higher temperature compared to that of the virgin membrane. However, the degrees of dispersion and interaction between the organic polymer and inorganic silicates play vital roles in improving the key properties of the membranes. Hence, different techniques and solvent media were used to improve the degrees of nanofiller dispersion and the physico-chemical properties of the membranes. This review focuses mainly on the techniques of silicate-based nanocomposite fabrication and the resulting impact on the membrane properties. (C) 2011 Elsevier Ltd. All rights reserved.

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