We assess heat and mass transfer limitations in in situ studies of model catalysts with a first-principles based multiscale modeling approach that integrates a detailed description of the surface reaction chemistry and the macro-scale flow structures. Using the CO oxidation at RuO2(110) as a prototypical example we demonstrate that factors like a suppressed heat conduction at the backside of the thin single-crystal, and the build-up of a product boundary layer above the flat-faced surface play a significant role
ABSTRACT: The theoretical study of catalysis would sub-stantialy benefit from the use of atomistic s...
Understanding the complex behavior of particles at surfaces requires detailed knowledge of both macr...
Accomplishing a first-principles modeling of heterogeneous catalysis that allows for a quantitative ...
We assess heat and mass transfer limitations in in situ studies of model catalysts with a first-prin...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
A first-principles based multiscale modeling approach to heterogeneous catalysis is presented, that ...
We investigate transport effects on in situ studies of defined model catalysts using a multi-scale m...
First-principles kinetic Monte Carlo (1p-kMC) simulations for CO oxidation on two RuO2 facets, RuO2(...
Using the catalytic CO oxidation at RuO2(110) as a showcase, we employ first-principles kinetic Mont...
Using the catalytic CO oxidation at RuO<sub>2</sub>(110) as a showcase, we employ first-principles k...
First-principles kinetic Monte Carlo (1p-kMC) simulations for CO oxidation on two RuO<sub>2</sub> fa...
We present a density-functional theory based kinetic Monte Carlo study of CO oxidation at the (111) ...
Microkinetic modeling of surface chemical reactions still relies heavily on the mean-field based rat...
ABSTRACT: The theoretical study of catalysis would sub-stantialy benefit from the use of atomistic s...
Understanding the complex behavior of particles at surfaces requires detailed knowledge of both macr...
Accomplishing a first-principles modeling of heterogeneous catalysis that allows for a quantitative ...
We assess heat and mass transfer limitations in in situ studies of model catalysts with a first-prin...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
We present a first-principles based multiscale modeling approach to heterogeneous catalysis that int...
A first-principles based multiscale modeling approach to heterogeneous catalysis is presented, that ...
We investigate transport effects on in situ studies of defined model catalysts using a multi-scale m...
First-principles kinetic Monte Carlo (1p-kMC) simulations for CO oxidation on two RuO2 facets, RuO2(...
Using the catalytic CO oxidation at RuO2(110) as a showcase, we employ first-principles kinetic Mont...
Using the catalytic CO oxidation at RuO<sub>2</sub>(110) as a showcase, we employ first-principles k...
First-principles kinetic Monte Carlo (1p-kMC) simulations for CO oxidation on two RuO<sub>2</sub> fa...
We present a density-functional theory based kinetic Monte Carlo study of CO oxidation at the (111) ...
Microkinetic modeling of surface chemical reactions still relies heavily on the mean-field based rat...
ABSTRACT: The theoretical study of catalysis would sub-stantialy benefit from the use of atomistic s...
Understanding the complex behavior of particles at surfaces requires detailed knowledge of both macr...
Accomplishing a first-principles modeling of heterogeneous catalysis that allows for a quantitative ...