화학공학소재연구정보센터
Journal of the American Chemical Society, Vol.130, No.20, 6345-6345, 2008
Pathways and populations: Stereoelectronic insights into the exocyclic torsion of 5-(hydroxymethyl)tetrahydropyran
High level ab initio computations in vacuum and with the IEFPCM implicit solvent model are carried out on 5-(hydroxymethyl)tetrahydropyran to investigate the effects of water on the exocyclic torsional surface. Rotamer populations evaluated from the omega(C-C-C-O), theta(C-C-C-O) solvent surface agree almost quantitatively with experimental values for the closely related methyl 4-deoxy-alpha-D-xylohexopyranoside. Potentials of mean force obtained from the two surfaces show substantial solvent stabilization of the TG (omega = 180 +/- 60 degrees) rotamer and the barriers at omega = 120 and 240 degrees but solvent destabilization at the cis barrier (omega = 0 degrees). Natural bond orbital analyses indicate that energetics of these effects are largely explained by overstabilization of the vacuum GT (omega = 60 +/- 160 degrees) and GG (omega = 300 +/- 60 degrees) rotamers. Solvent stabilization of 0 conformations provides entropic stabilization.