Studies of the methane oxidation on Pd/β₯-Al 2 O 3 catalysts with and without chloride were made. The reaction was investigated at temperatures in the range 20-500 β’ C using stoichiometric reactant mixture. Dissociation of methane and oxygen and desorption of carbon dioxide and water on Pd catalysts
A combined theoretical and experimental study of NO decomposition on Pd and Pd-Mo catalysts
β Scribed by G.M. Tonetto; M.L. Ferreira; D.E. Damiani
- Publisher
- Elsevier Science
- Year
- 2003
- Tongue
- English
- Weight
- 317 KB
- Volume
- 193
- Category
- Article
- ISSN
- 1381-1169
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β¦ Synopsis
Studies of NO decomposition on Pd/β₯-Al 2 O 3 , Mo/β₯-Al 2 O 3 and Pd-Mo/β₯-Al 2 O 3 catalysts were made. The reaction was investigated at 400 β’ C using a reactant mixture of 1100 ppm NO in He. Adsorption and dissociation of NO, O 2 and N 2 on Pd(1 1 1), MoO x -Pd(1 1 1) and MoO x -β₯Al 2 O 3 surfaces have been investigated using a molecular orbital approach of the extended HΓΌckel (EHMO) type, including repulsion terms.
The catalytic tests have revealed that the binary catalyst present a different behavior for the NO decomposition, the main difference being a longer steady-state activity at low temperature. Characterization results by TPR and hydrogen chemisorption have indicated that palladium physicochemical properties are altered by an effective interaction with molybdenum. This interaction appears to be responsible for the observed modification in NO activity.
Our results of EHMO have showed that the NO adsorption energy on MoO x -Pd(1 1 1) model is lower than the one for Pd(1 1 1) or MoO x -β₯Al 2 O 3 . Also, adsorption and dissociation of N 2 and O 2 are notoriously modified when an interaction between the two metals exists. Those results would indicate the existence of a Pd-Mo interface with catalytic properties different to the metals.
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The compound [Pd(dmba)(NCO)(imz)] (dmba = N,N-dimethylbenzilamine; NCO = cyanate; imz = imidazole) was studied through experimental and theoretical methods. The complex was synthesized and characterized by IR and NMR spectroscopy. To an appropriate representation of the molecular environment, Gaussi
## Abstract Pure Pd/SiO~2~, pure Rh/SiO~2~, and bimetallic PdRh/SiO~2~ catalysts, with Pd and Rh in the atomic ratios of 75/25 at% and 50/50 at%, were studied by means of infrared (IR) spectroscopy. Spectra of adsorbed CO and NO were recorded in the temperature range from 298 to 573K. The IR spectr