화학공학소재연구정보센터
Chemical Engineering Journal, Vol.316, 797-806, 2017
Dehydration of glycerol to acrolein over Wells-Dawson and Keggin type phosphotungstic acids supported on MCM-41 catalysts
Gas phase dehydration of glycerol to acrolein was studied using the Wells-Dawson and Keggin type phosphotungstic acids supported on MCM-41 catalysts. The samples were characterized using XRD, FTIR, pyridine-FTIR, UV-Vis, N-2 adsorption, NH3-TPD, ICP, SEM and elemental analysis. FP-IR and UVVis spectra results confirmed the presence of Wells-Dawson and Keggin type phosphotungstic acids on the support. XRD results suggested that the active phases were highly dispersed on MCM-41. N-2 adsorption results showed that the mesoporous structure of MCM-41 was retained after loading of phosphotungstic acids. H3PW12O40/MCM-41 showed higher total acid sites than H6P2W18O62/MCM-41, but the number of Bronsted acid sites on H6P2W18O62/MCM-41 was higher than that of H6P2W18O62/MCM-41. Glycerol conversion increased with the total amount of acid sites. The acid type also influenced catalytic performance. The selectivity to acrolein increased with increasing the ratio of Bronsted and Lewis acid, and lower value of Bronsted/Lewis acid favored the production of hydroxyacetone. H6P2W18O62/MCM-41MCM-41 owned more Bronsted acid sites, the dehydration reaction was more likely to occur via the Bronsted acid sites dehydration route, thus generating more acrolein and formaldehyde. Meanwhile, exhibited more Lewis acid sites, the dehydration reaction was more likely proceeding via the Lewis acid sites dehydration route and generating more hydroxyacetone and acetaldehyde. Furthermore, we concluded that the reasons for decrease of catalytic performance in glycerol conversion were leaching of HPW and coke deposition. (C) 2017 Elsevier B.V. All rights reserved.