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http://dx.doi.org/10.7836/kses.2014.34.4.009

Current Sensing Atomic Force Microscopy Study of the Morphological Variation of Hydrated Pronton Exchange Membrane  

Kwon, Osung (College of Liberal Education, Keimyung University)
Lee, Sangcheol (Wellness Convergence Research Center, DGIST)
Son, ByungRak (Wellness Convergence Research Center, DGIST)
Lee, Dong-Ha (Wellness Convergence Research Center, DGIST)
Publication Information
Journal of the Korean Solar Energy Society / v.34, no.4, 2014 , pp. 9-16 More about this Journal
Abstract
A proton exchange membrane is a core component in the proton exchange membrane fuel cell because the role of proton exchange membrane(PEM)is supplying proton conductivity to fuel cell, a gas separator, and insulating between an anode and cathode. Among various role of PEM, supplying proton conductivity is the most important and the proton conductivity is strongly related the structural evolution of PEM by hydration. Thus a lot of studies have done by past few decade based on small angle X-ray scattering and wide angle X-ray scattering for understanding morphological structure of the PEM. Resulting from these studies, several morphological models of hydrated PEM are proposed. Current sensing atomic force microscopy (CSAFM) can map morphology and conductance on the membrane simultaneously. It can be the best tool for studying heterogenous structured materials such as PEM. In this study, the hydration of the membrane is examined by using CSAFM. Conductance and morphological images are simultaneously mapped under different relative humidity. The conductance images, which are mapped from different relative humidity, are analyzed by statistical methode for understanding ionic channel variation in PEM.
Keywords
Proton exchange membrane fuel fell; Proton exchange membrane; Ionic channel; Atomic force microscopy; Hydration; Fuel Cell;
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