Experimental and Theoretical Study of Multi-Quantum Vibrational Excitation: NO(v=0 -> 1,2,3) in Collisions with Au(111)

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

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​Experimental and Theoretical Study of Multi-Quantum Vibrational Excitation: NO(v=0 -> 1,2,3) in Collisions with Au(111)​
Golibrzuch, K.; Kandratsenka, A.; Rahinov, I.; Cooper, R.; Auerbach, D. J.; Wodtke, A. M. & Bartels, C.​ (2013) 
The Journal of Physical Chemistry A117(32) pp. 7091​-7101​.​ DOI: https://doi.org/10.1021/jp400313b 

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Authors
Golibrzuch, Kai; Kandratsenka, Alexander; Rahinov, Igor; Cooper, Russell; Auerbach, Daniel J.; Wodtke, Alec Michael; Bartels, Christof
Abstract
We measured absolute probabilities for vibrational excitation of NO(v = 0) molecules in collisions with a Au(111) surface at an incidence energy of translation of 0.4 eV and surface temperatures between 300 and 1100 K. In addition to previously reported excitation to v = 1 and v = 2, we observed excitation to v = 3. The excitation probabilities exhibit an Arrhenius dependence on surface temperature, indicating that the dominant excitation mechanism is nonadiabatic coupling to electron hole pairs. The experimental data are analyzed in terms of a recently introduced kinetic model, which was extended to include four vibrational states. We describe a subpopulation decomposition of the kinetic model, which allows us to examine vibrational population transfer pathways. The analysis indicates that sequential pathways (v = 0 -> 1 -> 2 and v = 0 -> 1 -> 2 -> 3) alone cannot adequately describe production of v = 2 or 3. In addition, we performed first-principles molecular dynamics calculations that incorporate electronically nonadiabatic dynamics via an independent electron surface hopping (IESH) algorithm, which requires as input an ab initio potential energy hypersurface (PES) and nonadiabatic coupling matrix elements, both obtained from density functional theory (DFT). While the LESH-based simulations reproduce the v = 1 data well, they slightly underestimate the excitation probabilities for v = 2, and they significantly underestimate those for v = 3. Furthermore, this implementation of IESH appears to overestimate the importance of sequential energy transfer pathways. We make several suggestions concerning ways to improve this IESH-based model.
Issue Date
2013
Status
published
Publisher
Amer Chemical Soc
Journal
The Journal of Physical Chemistry A 
ISSN
1089-5639
Sponsor
Alexander von Humboldt foundation

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