Published July 2000 | Version v1
Miscellaneous

Kinetics of water-mediated proton transfer in our atmosphere

Description

Variational transition state theory and multidimensional tunneling methods on hybrid density functional theory generated hypersurfaces have been used to investigate the temperature dependence of the reaction rate constants of water-mediated proton transfer reactions relevant to the chemistry of our atmosphere, namely the hydration of sulfur dioxide and sulfur trioxide and the decomposition of chlorine nitrate. Highly accurate reaction barriers were calculated using ab initio methods taking into account most of the electron correlation, namely CCSD(T)/aug-cc-pVDZ//MP2/aug-cc-pVDZ and G2(MP2). On comparing the determined rate constants with laboratory and atmospheric data, the following points could be established: All of the investigated reactions are highly sensitive to changes in humidity, as water acts as efficient catalyst, i.e., the barrier to the reaction is reduced drastically. Present-day atmospheric chemistry can only be explained when a limited number of water molecules is available for the formation of molecular clusters. Both in the troposphere and in the stratosphere SO3 is hydrated rather than SO2. SO2 emissions have to be oxidized, therefore, before being subject to hydration. A mechanism involving two or three water molecules is relevant for the production of sulfate aerosols, which play a decisive role in the context of global climate change and acid rain. A third water molecule has the function of assisting double-proton transfer rather than acting as active participant in triple-proton transfer in the case of the hydration of sulfur oxides. The observed ozone depletion above Arctica and Antarctica can be explained either by decomposition of chlorine nitrate in the presence of three water molecules (triple proton transfer) or by decomposition of chlorine nitrate in the presence of one molecule of HCl and one molecule of water (double proton transfer). The preassociation reaction required for homogeneous gas-phase conversion of chlorine reservoir species to active chlorine species increases the half-life of the reservoir species enormously in comparison to the unimolecular heterogeneous reaction. That is why the ozone layer above midlatitudes shows no depletion. The nucleophilic attack is concerted with the proton transfer(s), i.e., no reaction intermediates like ions exist. The multiple proton transfers occur asynchronously according to the hydrogen bond compression mechanism in a linear OH...O arrangement at a heavy atom distance of 2.5 Angstrom . (author)

Availability note (English)

Available from Univ. Bibliothek Innsbruck, Innrain 50, 6010 Innsbruck (AT)

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Imprint Pagination
176 p.

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Notes
Reference number: DG 33698