M. Clericuzio et al., Ab initio and density functional evaluations of the molecular conformations of beta-caryophyllene and 6-hydroxycaryophyllene, J ORG CHEM, 65(21), 2000, pp. 6910-6916
The four conformations of beta -caryophyllene (alpha alpha, alpha beta, bet
a alpha, and beta beta) were investigated ab initio at the 6-31G*/HF and MP
2 levels and additionally hth density functional methods (B3LYP/6-31G*), as
it concerns their relative thermodynamic stabilities. The alpha alpha is p
redicted to be the most stable geometry, in agreement with low-temperature
NMR measurements. In the case of 6-hydroxycaryophyllene, the alpha alpha is
still the most stable conformation when the configuration at C-6 is S, but
when the configuration is reversed to R the beta beta geometry becomes the
most stable one. This is again in agreement with NMR data. On the other ha
nd, for both molecules the AM1 semiempirical model Hamiltonian fails to pre
dict the alpha alpha as a low-energy geometry, mainly due to an incorrect d
escription of the cyclobutane ring puckering. The interconversion paths amo
ng the different minima are also analyzed and discussed. The solvent effect
(either chloroform or water) on the stability of the different conformers
of beta -caryophyllene and 6-hydroxycaryophyllene was studied in the polari
zable continuum model framework.