Lee-Ping Wang, Keri A. McKiernan, et al.
Journal of Physical Chemistry B
The energy separation between the classical and nonclassical forms of protonated acetylene has been reinvestigated in light of the recent experimentally deduced lower bound to this value of 6.0 kcal/mol. The objective of the present study is to use state-of-the-art ab initio quantum mechanical methods to establish this energy difference to within chemical accuracy (i.e., about 1 kcal/mol). The one-particle basis sets include up to g-type functions and the electron correlation methods include single and double excitation coupled-cluster (CCSD), the CCSD(T) extension, multireference configuration interaction, and the averaged coupled-pair functional methods. A correction for zero-point vibrational energies has also been included, yielding a best estimate for the energy difference between the classical and nonclassical forms of 3.7 ± 1.3 kcal/mol. © 1991 American Institute of Physics.
Lee-Ping Wang, Keri A. McKiernan, et al.
Journal of Physical Chemistry B
Qiaohong Wang, Valay Agarawal, et al.
Journal of Chemical Physics
Andrew Willetts, Julia E. Rice
The Journal of Chemical Physics
Ieva Liepuoniute, Mario Motta, et al.
Physical Chemistry Chemical Physics