To be able to simulate activated heterogeneously catalyzed reactions on the edge and corner sites of nanoparticles, a method for calculating accurate activation barriers for the reactions is required. We have recently demonstrated that a semiempirical specific reaction parameter (SRP) density functional developed to describe CHD3 dissociation on a flat Ni(111) surface is transferable to describing the same reaction on a stepped Pt(211) surface. In the current work, we compare initial sticking coefficients measured using the King and Wells beam reflectivity technique and calculated from ab initio molecular dynamics trajectories using the same SRP functional for CHD3 dissociation on a kinked Pt(210) surface at a temperature of 650 K. The calc...
We report a combined experimental and theoretical study comparing methane dissociation on three di e...
The accurate description of heterogeneously catalyzed reactions may require chemically accurate eval...
The research presented in this thesis makes use of small molecules (as H2 , D2 and O2 ) ...
To be able to simulate activated heterogeneously catalyzed reactions on the edge and corner sites of...
The dissociation of methane on transition metal surfaces is not only of fundamental interest but als...
The dissociation of methane on transition metal surfaces is not only of fundamental interest but als...
Accurately simulating heterogeneously catalyzed reactions requires reliable barriers for molecules r...
The specific reaction parameter (SRP) approach to density functional theory has been shown to model ...
Accurate barriers for rate controlling elementary surface reactions are key to understanding, contro...
The dissociative chemisorption of small molecules on metal surfaces is an important step in many het...
We determine absolute reactivities for dissociation at low coordinated Pt sites. Two curved Pt(111) ...
ABSTRACT: The dissociative chemisorption of methane on metal surfaces is of fundamental and practica...
I present a molecular beam study of methane dissociation on differ-ent surface sites of several plat...
The classic system that describes weakly activated dissociation in heterogeneous catalysis has been ...
Reaction mechanisms following gas-surface collisions may differ depending on the site of impact. On ...
We report a combined experimental and theoretical study comparing methane dissociation on three di e...
The accurate description of heterogeneously catalyzed reactions may require chemically accurate eval...
The research presented in this thesis makes use of small molecules (as H2 , D2 and O2 ) ...
To be able to simulate activated heterogeneously catalyzed reactions on the edge and corner sites of...
The dissociation of methane on transition metal surfaces is not only of fundamental interest but als...
The dissociation of methane on transition metal surfaces is not only of fundamental interest but als...
Accurately simulating heterogeneously catalyzed reactions requires reliable barriers for molecules r...
The specific reaction parameter (SRP) approach to density functional theory has been shown to model ...
Accurate barriers for rate controlling elementary surface reactions are key to understanding, contro...
The dissociative chemisorption of small molecules on metal surfaces is an important step in many het...
We determine absolute reactivities for dissociation at low coordinated Pt sites. Two curved Pt(111) ...
ABSTRACT: The dissociative chemisorption of methane on metal surfaces is of fundamental and practica...
I present a molecular beam study of methane dissociation on differ-ent surface sites of several plat...
The classic system that describes weakly activated dissociation in heterogeneous catalysis has been ...
Reaction mechanisms following gas-surface collisions may differ depending on the site of impact. On ...
We report a combined experimental and theoretical study comparing methane dissociation on three di e...
The accurate description of heterogeneously catalyzed reactions may require chemically accurate eval...
The research presented in this thesis makes use of small molecules (as H2 , D2 and O2 ) ...