Scanning tunneling microscopy evidence for the dissociation of carbon monoxide on ruthenium steps
Résumé
In heterogeneous catalysis, identifying the active site for key reaction steps is an important contribution for the optimization of industrial synthesis. The structure sensitivity of CO dissociation on a metal catalyst, which is the rate-limiting step for the methanation and the Fischer-Tropsch processes under certain conditions, has been debated for years. Here, scanning tunneling microscopy (STM) and density functional theory (DFT) are used to clarify the role of monatomic steps in the splitting of CO on a stepped Ru(0 1 54) crystal, which displays alternating steps with either 4-fold or 3-fold symmetry. After CO doses at elevated temperatures, the STM images reveal step decorations characteristic of atomic oxygen resulting from CO dissociation on every second step. The comparison of the STM images with the results of DFT calculations shows that the step decoration occurs on the steps displaying the 4-fold symmetry. We conclude that the active sites for CO dissociation on ruthenium are located on the 4-fold symmetry monatomic steps. © 2012 American Chemical Society.
Mots clés
3-fold symmetry
Active site
Atomic oxygen
CO dissociations
Density functional theories (DFT)
DFT calculation
Elevated temperature
Fischer-Tropsch process
Industrial synthesis
Key reactions
Metal catalyst
Rate-limiting steps
STM images
Structure sensitivity
Carbon monoxide
Coal liquefaction
Density functional theory
Fischer-Tropsch synthesis
Hydrogenation
Ruthenium
Scanning tunneling microscopy
Dissociation