[go: up one dir, main page]
More Web Proxy on the site http://driver.im/

Hess et al., 2002 - Google Patents

Mechanism for NO2 storage in barium oxide supported on magnesium oxide studied by in situ Raman spectroscopy

Hess et al., 2002

Document ID
10855491316599182353
Author
Hess C
Lunsford J
Publication year
Publication venue
The Journal of Physical Chemistry B

External Links

Snippet

The mechanism for NO2 storage in barium oxide supported on magnesium oxide (BaO/MgO) was investigated. In situ Raman spectroscopy was used to follow temporal changes in the composition of the catalyst that occurred during the reaction with NO2. Up to …
Continue reading at pubs.acs.org (other versions)

Similar Documents

Publication Publication Date Title
Hess et al. Mechanism for NO2 storage in barium oxide supported on magnesium oxide studied by in situ Raman spectroscopy
Olsson et al. A kinetic study of oxygen adsorption/desorption and NO oxidation over Pt/Al2O3 catalysts
Stere et al. Ambient temperature hydrocarbon selective catalytic reduction of NO x using atmospheric pressure nonthermal plasma activation of a Ag/Al2O3 catalyst
Broqvist et al. Characterization of NO x species adsorbed on BaO: experiment and theory
Xiong et al. Novel Effect of H2O on the Low Temperature Selective Catalytic Reduction of NO with NH3 over MnO x CeO2: Mechanism and Kinetic Study
Stere et al. Probing a non-thermal plasma activated heterogeneously catalyzed reaction using in situ DRIFTS-MS
Olsson et al. Mean field modelling of NOx storage on Pt/BaO/Al2O3
Ozensoy et al. Isocyanate formation in the catalytic reaction of CO+ NO on Pd (111): an in situ infrared spectroscopic study at elevated pressures
Klingstedt et al. Toward improved catalytic low-temperature NO x removal in diesel-powered vehicles
Breen et al. Structural investigation of the promotional effect of hydrogen during the selective catalytic reduction of NOx with hydrocarbons over Ag/Al2O3 catalysts
Broqvist et al. NO x storage on BaO (100) surface from first principles: a two channel scenario
Li et al. Pd-doped perovskite: An effective catalyst for removal of NO x from lean-burn exhausts with high sulfur resistance
Ozensoy et al. NO2 adsorption on ultrathin θ-Al2O3 films: formation of nitrite and nitrate species
Huang et al. The promoting role of noble metals on NO x storage catalyst and mechanistic study of NO x Storage under lean-burn conditions
Scotti et al. Kinetic Study of Lean NO x Storage over the Pt− Ba/Al2O3 System
Hess et al. NO2 storage and reduction in barium oxide supported on magnesium oxide studied by in situ Raman spectroscopy
Seneque et al. NOx Selective Catalytic Reduction (NO x-SCR) by Urea: Evidence of the Reactivity of HNCO, Including a Specific Reaction Pathway for NOx Reduction Involving NO+ NO2
Mestl et al. Decomposition of nitric oxide over barium oxide supported on magnesium oxide. 2. In situ Raman characterization of phases present during the catalytic reaction
Epling et al. Carbonate formation and stability on a Pt/BaO/γ-Al2O3 NO x storage/reduction catalyst
Weiss et al. NO x interactions with dispersed BaO: adsorption kinetics, chemisorbed species, and effects of oxidation catalyst sites
Machida et al. Role of Hydrogen-Spillover in H2− NO Reaction over Pd-Supported NO x-Adsorbing Material, MnO x− CeO2
Fujitani et al. Adsorption and reactions of NO on clean and CO-precovered Ir (111)
Ma et al. Temperature-Dependent Effects of SO2 on Selective Catalytic Reduction of NO over Fe–Cu–OX/CNTs–TiO2 Catalysts
Theinnoi et al. Hydrogen promotion of low-temperature passive hydrocarbon-selective catalytic reduction (SCR) over a silver catalyst
Zhang et al. A highly active and stable non-platinic lean NOx trap catalyst MNOx-K2CO3/K2Ti8O17 with ultra-low NOx to N2O selectivity