We report quantum-state resolved measurements of angular and velocity distributions of the associative desorption of H-2, HD, and D-2 from Cu(111) and Cu(211) surfaces. The desorbing molecules have bimodal velocity distributions comprising a "fast" channel and a "slow" channel on both facets. The "fast channel" is promoted by both hydrogen incidence translational and vibrational energy, while the "slow channel" is promoted by vibrational energy but inhibited by translational energy. Using detailed balance, we determine state-specific reaction probabilities for dissociative adsorption and compare these to theoretical calculations. The results for the activation barrier for the " fast channel" on Cu(111) are in agreement with theory within "c...
A new finding of the site-averaging approximation was recently reported on the dissociative chemisor...
The activation and dissociation of H2 molecules on Cu(001) surface is studied theoretically. The act...
Here we present a thorough density functional theory study, including and excluding dispersive force...
We report quantum-state resolved measurements of angular and velocity distributions of the associati...
Obtaining quantitative agreement between theory and experiment for dissociative adsorption of hydrog...
Reactions on stepped surfaces are relevant to heterogeneous catalysis, in which a reaction often tak...
The dissociative adsorption reaction of hydrogen on noble metals is believed to be well-described wi...
Stepped metal surfaces are usually assumed to exhibit an increased catalytic activity for bond cleav...
Obtaining quantitative agreement between theory and experiment for dissociative adsorption of hydrog...
At present, much remains unknown about the effect surface phonons and surface temperature may have o...
The effects of dynamics, surface temperature, and tunneling on the dissociative chemisorption of hyd...
Isothermal measurements of the helium specular reflectivity from H–Cu(1 1 1) are used to demonstrate...
Abstract: We have studied the effect of lattice displacement on the interaction of H(2) with the Cu(...
Dissociation of molecular hydrogen is an important step in a wide variety of chemical, biological, a...
We explore the feasibility of using hydrogen to probe local surface reactivity. To do this, we compa...
A new finding of the site-averaging approximation was recently reported on the dissociative chemisor...
The activation and dissociation of H2 molecules on Cu(001) surface is studied theoretically. The act...
Here we present a thorough density functional theory study, including and excluding dispersive force...
We report quantum-state resolved measurements of angular and velocity distributions of the associati...
Obtaining quantitative agreement between theory and experiment for dissociative adsorption of hydrog...
Reactions on stepped surfaces are relevant to heterogeneous catalysis, in which a reaction often tak...
The dissociative adsorption reaction of hydrogen on noble metals is believed to be well-described wi...
Stepped metal surfaces are usually assumed to exhibit an increased catalytic activity for bond cleav...
Obtaining quantitative agreement between theory and experiment for dissociative adsorption of hydrog...
At present, much remains unknown about the effect surface phonons and surface temperature may have o...
The effects of dynamics, surface temperature, and tunneling on the dissociative chemisorption of hyd...
Isothermal measurements of the helium specular reflectivity from H–Cu(1 1 1) are used to demonstrate...
Abstract: We have studied the effect of lattice displacement on the interaction of H(2) with the Cu(...
Dissociation of molecular hydrogen is an important step in a wide variety of chemical, biological, a...
We explore the feasibility of using hydrogen to probe local surface reactivity. To do this, we compa...
A new finding of the site-averaging approximation was recently reported on the dissociative chemisor...
The activation and dissociation of H2 molecules on Cu(001) surface is studied theoretically. The act...
Here we present a thorough density functional theory study, including and excluding dispersive force...