Direct oxidation of methane to methanol (DMTM), a highly challenging reaction in C chemistry, has attracted lots of attention. Herein, we investigate the continuous HO-mediated NO-DMTM over a series of Cu-ZSM-5- zeolites prepared by a solid-state ion-exchange method. Excellent CHOH productivity (194.8 μmol g h) and selectivity (67.1%) can be achieved over Cu-ZSM-5-0.3%, which surpasses most recently reported zeolite catalysts. The effect of the active site motif structure on the reaction was systematically investigated by the combined experimental and theoretical studies. It has been revealed that both the monomeric [Cu] and binuclear [Cu]-[Cu] sites function to produce CHOH, following the radical rebound mechanism, wherein the latter one plays a dominant role due to the synergistic effect of neighboring [Cu] that can efficiently reduce the NO dissociation barrier to generate active oxygen for CH oxidation. Microkinetic modeling results further show that the dicopper site possesses a much higher net reaction rate (1.23 × 10 s) than the monomeric Cu site (0.962 s); moreover, HO can shift the rate determining step from the CHOH desorption step to the NO dissociation step over the dicopper site, thereby efficiently favoring CHOH production and resisting carbon deposition. Generally, the study in the present work would substantially favor other highly efficient catalyst designs.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1039/d3cp01906c | DOI Listing |
Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!