Proton transfers between first- and second-row atoms: (H2OHSH2)+ and (H3NHSH2)+
- 1 March 1984
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 80 (5) , 1982-1987
- https://doi.org/10.1063/1.446961
Abstract
A b initio molecular orbital methods are used to study the transfer of the central proton along the hydrogen bonds in (H2OHSH2)+ and (H3NHSH2)+. Proton transfer potentials are generated using the 4-31G* basis set at the Hartree–Fock level for various values for the hydrogen bond length R(XS). Full geometry optimizations are carried out at each stage of proton transfer. The barrier to proton transfer increases as the hydrogen bond is lengthened. For a given bond length, the highest barriers are observed for transfer from N to S and the smallest for the reverse process. Intermediate between these two extremes are transfers between O and S for which the forward and reverse transfers lead to nearly identical barrier heights. Adiabatic transfers, in which the intermolecular separation is allowed to change as the transfer progresses, are studied as well. The barrier to adiabatic transfer from OH2 to SH2 is 2.6 kcal/mol; 1.9 for the reverse process. Similar relaxation of R(NS) leads to no stable (NH3)(SH3)+ structure and hence transfer from N to S is not expected. Application of larger basis sets and inclusion of correlation effects through second and third-order M≂ller–Plesset corrections support the reliability of the HF/4-31G* results.Keywords
This publication has 44 references indexed in Scilit:
- Theoretical analysis of conduction in acid and base solutionsThe Journal of Physical Chemistry, 1982
- Proton transfers in hydrogen-bonded systems. 2. Electron correlation effects in diamminehydrogen(1+)Journal of the American Chemical Society, 1981
- The oxygen analog of the protonated cyclopropane problem. A theoretical study of the C2H5O+ potential energy surfaceJournal of the American Chemical Society, 1981
- Possibility of .pi.-electron donation by the electron-withdrawing substituents CN, CHO, CF3, and +NH3Journal of the American Chemical Society, 1980
- Electron correlation theories and their application to the study of simple reaction potential surfacesInternational Journal of Quantum Chemistry, 1978
- Gas phase ion equilibria studies of the proton in hydrogen sulfide and hydrogen sulfide – water mixtures. Stabilities of the hydrogen bonded complexes: H+(H2S)x(H2O)yCanadian Journal of Chemistry, 1977
- SCF-CI studies of the equilibrium structure and the proton transfer barrier H3O 2 ?Theoretical Chemistry Accounts, 1976
- Extremely high polarizability of hydrogen bondsJournal of the American Chemical Society, 1972
- Theory of the strong hydrogen bond. Ab initio calculations on HF2- and H5O2+1aJournal of the American Chemical Society, 1970
- Study of the Electronic Structure of Molecules. II. Wavefunctions for the NH3+HCl→NH4Cl ReactionThe Journal of Chemical Physics, 1967