Investigations into the Nature of Halogen Bonding Including Symmetry Adapted Perturbation Theory Analyses.

J Chem Theory Comput

Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic and Center for Biomolecules and Complex Molecular Systems, Flemingovo nám. 2, 166 10 Prague 6, Czech Republic.

Published: February 2008

AI Article Synopsis

  • Halogen bonds have unique properties that make them valuable for developing new pharmaceuticals and materials.
  • This study uses advanced calculations to explore halogen bonding in specific molecular complexes involving halomethanes and formaldehyde.
  • Findings reveal that the strength of halogen bonding increases with larger halogen atoms and that these interactions are mainly influenced by electrostatic and dispersion forces, particularly when fluorine is substituted into the molecule.

Article Abstract

In recent years it has been recognized that, because of their unique properties, halogen bonds have tremendous potential in the development of new pharmaceutical compounds and materials. In this study we investigate the phenomenon of halogen bonding by carrying out ab initio calculations on the halomethane-formaldehyde complexes as well as the fluorine substituted FnH3-nCX···OCH2 dimers, where the halogen bonding halogens (X) are chlorine, bromine, and iodine. Coupled cluster (CCSD(T)/aug-cc-pVTZ) calculations indicate that the binding energies for these type of interactions lie in the range between -1.05 kcal/mol (H3CCl···OCH2) and -3.72 kcal/mol (F3CI···OCH2). One of the most important findings in this study is that, according to symmetry adapted perturbation theory (SAPT) analyses, halogen bonds are largely dependent on both electrostatic and dispersion type interactions. As the halogen atom involved in halogen bonding becomes larger the interaction strength for this type of interaction also gets larger and, interestingly, more electrostatic (and less dispersive) in character. Halogen bonding interactions also become stronger and more electrostatic upon substitution of (the very electronegative) fluorines onto the halomethane molecule.

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Source
http://dx.doi.org/10.1021/ct700216wDOI Listing

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