International Journal of Hydrogen Energy, Vol.44, No.14, 7276-7287, 2019
Thermodynamic and catalytic properties of Cu- and Pd- oxides over mixed gamma-chi-Al2O3 for methanol dehydration toward dimethyl ether
The development of catalytic systems to generate alternative energies capable of replacing diesel is a great challenge. Methanol dehydration (2CH(3)OH -> CH3OCH3 + H2O) is one of the most suitable catalytic reactions to produce dimethyl ether (DME). In DME synthesis, CuO/gamma-Al2O3 based-materials showed to be catalytically active at high pressures, but these lack high performance under atmospheric conditions. In this work, we synthesized CuO/gamma-chi-Al2O3, PdO/gamma-chi-Al2O3, and CuO-PdO/gamma-chi-Al2O3 by a facile impregnation method for methanol dehydration at atmospheric pressure. Catalytic results showed that the CuO-PdO/gamma-chi-Al2O3 sample performed the highest activity. All catalysts reached selectivity of 100% toward DME, regardless of the reaction temperature. Remarkably, the bimetallic catalyst containing low loadings of copper and palladium retained stability during 48 h of reaction at 275 degrees C, and after its regeneration they showed a similar trend. The activation energies (E-a) for the methanol dehydration using the catalyst that performed the highest catalytic activity CuO-PdO/gamma-chi-Al2O3 compared with the material with the lowest catalytic activity gamma-chi-Al2O3 were obtained. The activation energy values of the gamma-chi-Al2O3 and CuO-PdO/gamma-chi-Al2O3 catalysts were 112.57 kJ/mol and 45.73 kJ/mol, respectively. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.