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- 2009 Annual Meeting
- Catalysis and Reaction Engineering Division
- Chemical Reactor Dynamics
- (689c) Gas-Phase Coupling of Reactive Surfaces by Oscillating Reactant Clouds
In this work, we take advantage of a spatially distributed system of spatially isolated chemical oscillators to investigate the details of gas-phase communication during CO oxidation and NO reduction using NH3 on polycrystalline Pt. Characterization of local gas-phase variations using scanning mass spectrometry, in parallel with in situ surface imaging, provided a novel description of the surface/gas-phase interaction which differed from the conventional assumption of a gradient free, molecular flow environment near the surface even under vacuum conditions. This analysis further allowed for the determination of an effective gas-phase coupling length, which, based on the identification of oscillating reactant clouds above the surface, was calculated to be on the order of 500 µm for a total system pressure of 10-3 Torr. This coupling length was found to be in agreement with surface imaging results which qualitatively showed coupling between individual oscillators.