Abstract
A combination of periodic, self-consistent density functional theory (DFT-GGA-PW91) calculations, reaction kinetics experiments on a SiO2 -supported Pd catalyst, and mean-field microkinetic modeling are used to probe key aspects of H2 O2 decomposition on Pd in the absence of cofeeding H2 . We conclude that both Pd(111) and OH-partially covered Pd(100) surfaces represent the nature of the active site for H2 O2 decomposition on the supported Pd catalyst reasonably well. Furthermore, all reaction flux in the closed catalytic cycle is predicted to flow through an O-O bond scission step in either H2 O2 or OOH, followed by rapid H-transfer steps to produce the H2 O and O2 products. The barrier for O-O bond scission is sensitive to Pd surface structure and is concluded to be the central parameter governing H2 O2 decomposition activity.
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Plauck, A., Stangland, E. E., Dumesic, J. A., & Mavrikakis, M. (2016). Active sites and mechanisms for H2 O2 decomposition over Pd catalysts. Proceedings of the National Academy of Sciences of the United States of America, 113(14), E1973–E1982. https://doi.org/10.1073/pnas.1602172113
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