| Literature DB >> 29629166 |
Emilia A Carbonio1,2, Tulio C R Rocha3, Alexander Yu Klyushin1,2, Igor Píš4,5, Elena Magnano4,6, Silvia Nappini4, Simone Piccinin7, Axel Knop-Gericke2, Robert Schlögl2,8, Travis E Jones2.
Abstract
The nature of the oxygen species active in ethylene epoxidation is a long-standing question. While the structure of the oxygen species that participates in total oxidation (nucleophilic oxygen) is known the atomic structure of the selective species (electrophilic oxygen) is still debated. Here, we use both in situ and UHV X-ray Photoelectron Spectroscopy (XPS) to study the interaction of oxygen with a silver surface. We show experimental evidence that the unreconstructed adsorbed atomic oxygen (Oads) often argued to be active in epoxidation has a binding energy (BE) ≤ 528 eV, showing a core-level shift to lower BE with respect to the O-reconstructions, as previously predicted by DFT. Thus, contrary to the frequent assignment, adsorbed atomic oxygen cannot account for the electrophilic oxygen species with an O 1s BE of 530-531 eV, thought to be the active species in ethylene epoxidation. Moreover, we show that Oads is present at very low O-coverages during in situ XPS measurements and that it can be obtained at slightly higher coverages in UHV at low temperature. DFT calculations support that only low coverages of Oads are stable. The highly reactive species is titrated by background gases even at low temperature in UHV conditions. Our findings suggest that at least two different species could participate in the partial oxidation of ethylene on silver.Entities:
Year: 2017 PMID: 29629166 PMCID: PMC5874983 DOI: 10.1039/c7sc04728b
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1O 1s time evolution on Ag(110) during exposure to O2 at 10–5 mbar and 10–6 mbar at 423 K.
Fig. 2(a) O 1s BE as a function of time for Ag(110) in 10–6 mbar O2 at 423 K, (b) predicted maximum coverage of unreconstructed atomic oxygen as a function of temperature, assuming the added-row Ag–O chains in the p(N × 1) contribute no configurational entropy. The dashed line shows the predicted coverage at the temperature of the experiment.
Fig. 3O 1s and Ag 3d5/2 spectra of clean and oxygen covered Ag(110) surface. Temperature and oxygen dosing are indicated in the figure.
Fig. 4Reaction of ethylene with Oads on Ag(110) in a (4 × 4) cell. The black lines indicate the formation of the OMC (step 2). The blue (red) lines show the activation energy associated with EO (AcH) formation through the transition state labeled state 3 (5).