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Published April 5, 2007 | Supplemental Material
Journal Article Open

Single-Site Vanadyl Activation, Functionalization, and Reoxidation Reaction Mechanism for Propane Oxidative Dehydrogenation on the Cubic V_4O_(10)Cluster

Abstract

Vanadyl oxide (V═O) sites are thought to play a role in a number of industrially important catalysts for activating saturated alkanes, but in no system is the mechanism for the activation, product formation, and reoxidation steps established. In this paper, we use quantum mechanical methods (B3LYP flavor of density functional theory) to examine the detailed mechanism for propane reacting with a V_4O_(10) cluster to model the catalytic oxidative dehydrogenation (ODH) of propane on the V_2O_5(001) surface. We here report the mechanism of the complete catalytic cycle, including the regeneration of the reduced catalyst using gaseous O_2. The rate-determining step is hydrogen abstraction by the vanadyl (V═O) group (in agreement with experiment) to form an iso-propyl radical that binds to an adjacent V−O−V site. Subsequently, this bound iso-propyl forms propene product by β-hydride elimination to form bound H_2O. We find that this H_2O (bound to a V^(III) site) is too stable to desorb unimolecularly. Instead, the desorption is induced by binding of gaseous O_2 to the V^(III) site, which dramatically decreases the coordination energy of H_2O from 37.8 to 12.9 kcal/mol. Further rearrangement of the O_2 molecule leads to formation of a cyclic VO_2 peroxide, which activates the C−H bond of a second propane to form a second propene (with a lower reaction barrier). Desorption of this propene regenerates the original V_4O_(10) cluster. We find that all reactions involve the single vanadyl oxygen (V═O), with the bridging oxygens (V−O−V) serving to stabilize the iso-propyl radical intermediate. We refer to this mechanism as the single-site vanadyl activation, functionalization, and reoxidation mechanism (SS-VAFR). This SS-VAFR mechanism should be applicable to propane ODH on the supported vanadium oxide catalysts where only monovanadate (VO_4) species are present.

Additional Information

© 2007 American Chemical Society. Received 28 September 2006. Published online 14 March 2007. Published in print 1 April 2007. The personnel involved in this research were partially supported by DOE (DE-PS36-03GO93015), ONR (N00014-06-1-0938), and Chevron. The facilities were supported by ARO-DURIP and ONR-DURIP funds.

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August 19, 2023
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