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Insights on hydride formation over cerium-gallium mixed oxides: A mechanistic study for efficient H2 dissociation.

Authors :
Vecchietti, Julia
Baltanás, Miguel A.
Gervais, Christel
Collins, Sebastián E.
Blanco, Ginesa
Matz, Olivier
Calatayud, Monica
Bonivardi, Adrian
Source :
Journal of Catalysis. Jan2017, Vol. 345, p258-269. 12p.
Publication Year :
2017

Abstract

A four-step reaction mechanism is proposed for the H 2 dissociation over pure ceria and gallium-promoted mixed oxide materials, in a combined experimental and computational investigation. Two samples of cerium-gallium mixed oxides with Ce/Ga atomic ratios equal to 90/10 and 80/20 were studied by time-resolved diffuse reflectance infrared spectroscopy under H 2 (D 2 ) flow at isothermal condition in the range of 523–623 K. X-ray photoelectron spectrometry allowed to conclude that only Ce 4+ is reduced to Ce 3+ (Ga 3+ is not reduced), in agreement with density functional theory (DFT) results. The time evolution profiles of gallium hydride ( Ga H ) species, hydroxyl groups (OH) and Ce 3+ infrared signals were analyzed and kinetic rate parameters for each step were obtained by mathematical modeling. The values for activation energies were in agreement with those calculated by DFT, for the different elementary pathways. A small activation energy (∼4 kcal/mol) was found for H 2 dissociation found on Ga ⋯ O Ce sites assuming that the heterolytic cleavage of the H H bond is the rate determining step. On pure ceria, the experimental activation energy is ∼23 kcal/mol, showing that the addition of Ga 3+ cations boosts the splitting of H 2 . Interestingly, the reduction step of pure CeO 2 surface domains seems to proceed via a CeH/OH pair intermediate, according to DFT calculations. Moreover, 71 Ga NMR experiments indicate the possible presence of gallia nanodomains. It is proposed that the generation of Ga ⋯ O Ce sites in the perimeter of such surface gallia nanodomains is responsible for the enhanced reactivity of the mixed materials. The key role of this new type of sites to improve the efficiency of relevant catalytic reactions such as selective alkyne hydrogenation and light alkane dehydrogenation is then analyzed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219517
Volume :
345
Database :
Academic Search Index
Journal :
Journal of Catalysis
Publication Type :
Academic Journal
Accession number :
120446177
Full Text :
https://doi.org/10.1016/j.jcat.2016.11.029