Differential reaction cross sections from rotationally resolved quantum scattering calculations: application to gas-phase S(N)2 reactions

2012 | journal article. A publication with affiliation to the University of Göttingen.

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​Differential reaction cross sections from rotationally resolved quantum scattering calculations: application to gas-phase S(N)2 reactions​
Hennig, C. & Schmatz, S.​ (2012) 
Physical Chemistry Chemical Physics14(37) pp. 12982​-12991​.​ DOI: https://doi.org/10.1039/c2cp41141e 

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Authors
Hennig, Carsten; Schmatz, Stefan
Abstract
Differential reaction cross sections have been computed based on previous rotationally resolved time-independent quantum-mechanical scattering calculations for the complex-forming S(N)2 reaction Cl + CH3Br -> ClCH3 + Br . The results show almost isotropic cross sections for reactant molecules with high rotational quantum numbers. Backward scattering is disfavoured for reaction out of states with small rotational excitation, in particular the rovibrational ground state. This is a quantum-mechanical effect (interference of partial waves) that can partly be rationalized by simple classical arguments. In particular for higher vibrational excitations, an umbrella effect can be observed that favours the backward direction. It can be explained by the strong enhancement of the reactivity by opening a direct mechanism. The ion dipole interaction exerts a torque onto the molecule which carries out a rotation by about 90 degrees and then completes the reaction.
Issue Date
2012
Status
published
Publisher
Royal Soc Chemistry
Journal
Physical Chemistry Chemical Physics 
ISSN
1463-9076

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