Toward Detection of Electron-Hole Pair Excitation in H-atom Collisions with Au(111): Adiabatic Molecular Dynamics with a Semi-Empirical Full-Dimensional Potential Energy Surface

2013 | journal article. A publication with affiliation to the University of Göttingen.

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​Toward Detection of Electron-Hole Pair Excitation in H-atom Collisions with Au(111): Adiabatic Molecular Dynamics with a Semi-Empirical Full-Dimensional Potential Energy Surface​
Janke, S. M.; Pavanello, M.; Kroes, G.-J.; Auerbach, D. J.; Wodtke, A. M. & Kandratsenka, A.​ (2013) 
ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE-INTERNATIONAL JOURNAL OF RESEARCH IN PHYSICAL CHEMISTRY & CHEMICAL PHYSICS227(9-11) pp. 1467​-1490​.​ DOI: https://doi.org/10.1524/zpch.2013.0411 

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Authors
Janke, Svenja M.; Pavanello, Michele; Kroes, Geert-Jan; Auerbach, Daniel J.; Wodtke, Alec Michael; Kandratsenka, Alexander
Abstract
We report an analytic potential energy surface (PES) based on several hundred DFT energies for H interacting with a Au(111) surface. Effective medium theory is used to fit the DFT data, which were obtained for the Au atoms held at their equilibrium positions. This procedure also provides an adequate treatment of the PES for displacements of Au atoms that occur during scattering of H atoms. The fitted PES is compared to DFT energies obtained from ab initio molecular dynamics trajectories. We present molecular dynamics simulations of energy and angle resolved scattering probabilities at five incidence angles at an incidence energy, E-i = 5 eV, and at a surface temperature, T-S = 10 K. Simple single bounce trajectories are important at all incidence conditions explored here. Double bounce events also make up a significant fraction of the scattering. A qualitative analysis of the double-bounce events reveals that most occur as collisions of an H-atom with two neighboring surface gold atoms. The energy losses observed are consistent with a simple binary collision model, transferring typically less than 150meV to the solid per bounce.
Issue Date
2013
Status
published
Publisher
Walter De Gruyter Gmbh
Journal
ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE-INTERNATIONAL JOURNAL OF RESEARCH IN PHYSICAL CHEMISTRY & CHEMICAL PHYSICS 
ISSN
0942-9352
Sponsor
ANR-DFG-CHEMISTRY

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