About

Log in?

DTU users get better search results including licensed content and discounts on order fees.

Anyone can log in and get personalized features such as favorites, tags and feeds.

Log in as DTU user Log in as non-DTU user No thanks

DTU Findit

Journal article

Effective medium potentials for molecule-surface interactions: H2 on Cu and Ni surfaces

From

Computational Atomic-scale Materials Design, Department of Physics, Technical University of Denmark1

Department of Physics, Technical University of Denmark2

A new approximate method is developed for the calculation of the adiabatic potential energy surface for a molecule outside a metal surface. It is computationally fast enough to be useful in simulations of the dynamics of adsorbing and desorbing molecules. The method is characterized by the fact that the functional form of the total energy expression is derived from density functional theory, that each of the terms entering can be given a precise physical interpretation, and that most of the parameters entering can be calculated, within the local density approximation.

The method is explicitly derived for H2 outside metal surfaces and the applicability is illustrated for H2 adsorbing on various Cu and Ni surfaces. Although very approximate, the calculated potentials seem to include a number of features observed experimentally: Ni is more active in dissociating H2 than Cu, and open surfaces are more active than close-packed ones.

Moreover, the method is simple enough that one can contemplate studying variations in dissociation pathways over the surface unit cell. For the Cu surfaces these variations are substantial accounting for at least part of the variation of the sticking coefficient with the kinetic energy of the incoming molecule.

Because of the transparent nature of the energy expression, all these trends can be given a simple physical interpretation. The Journal of Chemical Physics is copyrighted by The American Institute of Physics.

Language: English
Publisher: American Institute of Physics
Year: 1989
Pages: 7461-7471
ISSN: 10897690 and 00219606
Types: Journal article
DOI: 10.1063/1.456679
ORCIDs: Nørskov, Jens Kehlet

DTU users get better search results including licensed content and discounts on order fees.

Log in as DTU user

Access

Analysis