Pm. Kozlowski et al., THE INNER-HYDROGEN MIGRATION AND GROUND-STATE STRUCTURE OF PORPHYCENE, The Journal of chemical physics, 109(14), 1998, pp. 5905-5913
Following on from previous work on free-base porphyrin, we present the
results of a comprehensive study on the structure and inner-hydrogen
migration in porphycene, a structural isomer of porphyrin. We used den
sity functional theory with the hybrid B3-LYP exchange-correlation fun
ctional, and both the 6-31G(d) and a triple-zeta double-polarization (
TZ2P) basis set (the latter containing 726 contracted basis functions)
. Full geometry optimizations were carried out and all stationary poin
ts were characterized by vibrational analysis. A scaled quantum mechan
ical (SQM) treatment of the theoretical force constants shows convinci
ngly that the trans-isomer is the ground state, with trans-trans inner
-hydrogen migration taking place-as is the case with porphyrin-in a tw
o-step process via a (highly unstable) cis intermediate. With the TZ2P
basis, excluding zero-point effects, the trans-cis barrier height is
4.9 kcal/mol, the cis-trans energy difference is 2.4 kcal/mol and the
reverse cis-trans barrier height is only 2.5 kcal/mol. We also map out
and fully characterize an alternative, high-energy migration path inv
olving a second, nonplanar cis isomer. (C) 1998 American Institute of
Physics.