화학공학소재연구정보센터
Journal of Catalysis, Vol.233, No.2, 453-463, 2005
Hydrogen production for fuel cell applications by ethanol partial oxidation on Pt/CeO2 catalysts: the effect of the reaction conditions and reaction mechanism
This work studied the effect of reaction conditions and catalyst reducibility oil the performance of the Pt/CeO2 catalyst in the partial oxidation of ethanol. Oxygen storage capacity (OSC) measurements allowed evaluation of the oxygen transfer capacity of the catalysts. Metal dispersion was determined through cyclohexane dehydrogenation, a structure-insensitive reaction. Infrared spectroscopy of adsorbed ethanol, temperature-programmed desorption, and temperature-programmed surface reaction of ethanol was performed to establish the reaction mechanism. The low dispersion and low oxygen transfer capacity led to a decrease in both the activity and stability of Pt/CeO2 catalysts on partial oxidation of ethanol. The higher amount of oxygen near the metal particles promotes the mechanism of carbon removal from the metallic surface, which takes place at the metal-support interfacial perimeter. Moreover, the increase in particle size decreases the metal-support interfacial area. reducing the effectiveness of the mechanism of carbon removal from the metallic surface. Furthermore, the results obtained on partial oxidation of ethanol showed that ail increase in the residence time or reaction temperature increased the ethanol conversion and H-2 yield. Regarding selectivity for hydrocarbons and oxygenated products, the production of methane increased and the selectivity for acetaldehyde decreased as the residence time or reaction temperature was increased. At low conversions, the ethanol dehydrogenation dominates. forming acetaldehyde, whereas at high conversions the decomposition of ethanol is favored, producing CH4, H-2, and CO. A reaction mechanism is proposed to explain the catalytic tests. (c) 2005 Elsevier Inc. All rights reserved.