Methyl rotational potentials and transferable pair potentials in toluene
- 1 April 1993
- journal article
- conference paper
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 98 (7) , 5653-5661
- https://doi.org/10.1063/1.464914
Abstract
The crystal structure of α‐phase toluene at 5 K has been refined from high resolution neutron powder diffraction data and the charge distribution in the molecule calculated ab initio. From these data, methyl rotational potentials of the two inequivalent methyl groups have been calculated for various parametrizations of transferable pair potentials and compared with potentials derived from tunneling and librational transitions. The results demonstrate that the inclusion of Coulomb interactions is necessary to reproduce the equilibrium orientations of the methyl groups. However, none of the model pair potentials yield the very strong sixfold contribution of the rotational potential of methyl group 1. The best approximation to the experimentally determined values is obtained with the pair potential parameters of Kitaigorodskii [Acta Crystallogr. 18, 585 (1965)]. However, by the inclusion of existing results on p‐xylene, the average agreement obtained with the parametrization of Claverie [Acta Crystallogr. Part A 31, 448 (1975)] is equally good. Overall, it was found that general improvements can be made if the repulsive parts of the model pair potentials are softened. The presence of two inequivalent methyl groups in toluene which are influenced in different ways by the various contributions to the interaction provides a rigorous test of the modeling techniques.Keywords
This publication has 27 references indexed in Scilit:
- Methyl rotational excitations in p-xylene: A test of pair interaction potentialsThe Journal of Chemical Physics, 1991
- Inelastic-neutron-scattering study of methyl tunneling and the quantum sine-Gordon breather in isotopic mixtures of 4-methyl-pyridine at low temperaturePhysical Review B, 1990
- Effect of isotopic dilution in the methyl tunnelling spectra of molecular crystalsJournal of Physics: Condensed Matter, 1989
- Methyl tunnelling in α-crystallised toluene by inelastic neutron scattering: temperature and pressure effectsJournal of Physics C: Solid State Physics, 1986
- Rotational tunnelling and methyl group reorientation in Sn(CH3)4 by inelastic neutron scattering and nuclear magnetic resonanceZeitschrift für Physik B Condensed Matter, 1983
- The temperature dependence of inelastic neutron scattering in rotational tunnelling systems. I. Formulation and perturbation theoryJournal of Physics C: Solid State Physics, 1982
- Pressure dependence of phonon energies in d8-naphthaleneJournal of Physics C: Solid State Physics, 1981
- Theoretical Calculation of the Spatial Distribution of Molecules in CrystalsRussian Chemical Reviews, 1980
- Intermolecular potentials from crystal data. III. Determination of empirical potentials and application to the packing configurations and lattice energies in crystals of hydrocarbons, carboxylic acids, amines, and amidesThe Journal of Physical Chemistry, 1974
- Calculation of Van der Waals Interactions and Hydrogen Bonding in CrystalsNature, 1969