Issue 19, 2008

Fluorine substitution and nonconventional OH⋯π intramolecular bond: high-resolution UV spectroscopy and ab initio calculations of 2-(p-fluorophenyl)ethanol

Abstract

The para-fluorinated flexible neurotransmitter analogue 2-phenylethanol has been investigated by highly resolved resonance-enhanced two-photon ionisation two-colour UV laser spectroscopy with mass resolution and ab initio structural optimisations and energy calculations. Two stable conformations, gauche and anti, separated by a high potential barrier have been identified in the cold molecular beam by rotational analysis of the vibronic band structures. The theoretically predicted higher-lying conformations most likely relax to these two structures during the adiabatic expansion. The lowest-energy gauche conformer is stabilised by an intramolecular nonconventional OH⋯π-type hydrogen bond between the terminal OH group of the side chain and the π electrons of the phenyl ring. The good agreement between the experimental and theoretical results demonstrates that even the substitution with a strongly electronegative atom of 2-phenylethanol at the para position has no noticeable effect on the strength and orientation of the OH⋯π bond.

Graphical abstract: Fluorine substitution and nonconventional OH⋯π intramolecular bond: high-resolution UV spectroscopy and ab initio calculations of 2-(p-fluorophenyl)ethanol

Article information

Article type
Paper
Submitted
10 Dec 2007
Accepted
23 Jan 2008
First published
22 Feb 2008

Phys. Chem. Chem. Phys., 2008,10, 2852-2859

Fluorine substitution and nonconventional OH⋯π intramolecular bond: high-resolution UV spectroscopy and ab initio calculations of 2-(p-fluorophenyl)ethanol

R. Karaminkov, S. Chervenkov and H. J. Neusser, Phys. Chem. Chem. Phys., 2008, 10, 2852 DOI: 10.1039/B718974E

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