Communication: Theoretical exploration of Au++ H2, D2, and HD reactive collisions

Update Item Information
Publication Type Journal Article
School or College College of Science
Department Chemistry
Creator Armentrout, Peter B.
Other Author Dorta-Urra, Anais; Zanchet, Alexandre; Roncero, Octavio; Aguado, Alfredo
Title Communication: Theoretical exploration of Au++ H2, D2, and HD reactive collisions
Date 2011
Description A quasi-classical study of the endoergic Au+(¹S) + H₂(X¹Σ+g) → AuH+ (²Σ+) + H(²S) reaction, and isotopic variants, is performed to compare with recent experimental results [F. Li, C. S. Hinton, M. Citir, F. Liu, and P. B. Armentrout, J. Chem. Phys. 134, 024310 (2011)]. For this purpose, a new global potential energy surface has been developed based on multi-reference configuration interaction ab initio calculations. The quasi-classical trajectory results show a very good agreement with the experiments, showing the same trends for the different isotopic variants of the hydrogen molecule. It is also found that the total dissociation into three fragments, Au++H+H, is the dominant reaction channel for energies above the H2 dissociation energy. This results from a well in the entrance channel of the potential energy surface, which enhances the probability of H-Au-H insertion.
Type Text
Publisher American Institute of Physics (AIP)
Volume 135
Issue 9
First Page 91102
Last Page 91101
DOI 10.1063/1.3635772
Language eng
Bibliographic Citation Dorta-Urra, A., Zanchet, A., Roncero, O., Aguado, A., & Armentrout, P. B. (2011). Communication: Theoretical exploration of Au++ H2, D2, and HD reactive collisions. Journal of Chemical Physics, 135(9), 091102-1-091102-4.
Rights Management ©American Institute of Physics. The following article appeared in Dorta-Urra, A., Zanchet, A., Roncero, O., Aguado, A., & Armentrout, P. B, Journal of Chemical Physics, 135(9), 2011. and may be found at http://dx.doi.org/10.1063/1.3635772.
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Format Extent 1,485,686 bytes
Identifier ir-main,17063
ARK ark:/87278/s6611j0q
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ID 707562
Reference URL https://collections.lib.utah.edu/ark:/87278/s6611j0q
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