4-DIMENSIONAL MODEL CALCULATION OF TORSIONAL LEVELS OF CYCLIC WATER TETRAMER

Citation
D. Sabo et al., 4-DIMENSIONAL MODEL CALCULATION OF TORSIONAL LEVELS OF CYCLIC WATER TETRAMER, The Journal of chemical physics, 109(13), 1998, pp. 5404-5419
Citations number
71
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
109
Issue
13
Year of publication
1998
Pages
5404 - 5419
Database
ISI
SICI code
0021-9606(1998)109:13<5404:4MCOTL>2.0.ZU;2-A
Abstract
Quantum four-dimensional model calculations of the coupled intermolecu lar torsional vibrations of the cyclic homodromic water tetramers (H2O )(4) and (D2O)(4) are presented, based on the analytical modEPEN4B pot ential energy surface [S. Graf and S. Leutwyler, J. Chem. Phys. 109, 5 393 (1998), preceding paper] and a four-dimensional discrete variable representation approach. The lowest 50 torsional levels were calculate d up to 420 and 500 cm(-1) for (D2O)(4) and (H2O)(4), respectively. Fo r both clusters, the torsional ground state is split by a synchronous O-H torsional inversion process, similar to inversion tunneling in amm onia, with calculated tunnel splittings of 21.8 and 0.000 12 MHz for ( H2O)(4) and (D2O)(4), respectively. As for the cyclic water trimer and pentamer, the four torsional fundamentals of the tetramer lie above t he torsional interconversion barriers, between 185-200 cm(-1) for (D2O )(4) and 229-242 cm(-1) for (H2O)(4), but also lie below the one-dimen sional torsionally adiabatic barriers. The anharmonic fundamental freq uencies lie both above and below the normal-mode frequencies, by up to 33%. Slightly above the fundamental torsional excitations, at 257-260 and 280-281 cm(-1) for (H2O)(4) and (D2O)(4), respectively, lie four states corresponding to four versions of the {uudd} isomer, which form a pseudorotational manifold; the torsional interconversion occurs by a sequence of double O-H flips. Higher excited pseudorotational states are calculated up to a vibrational angular momentum of k = 3. At appr oximate to 295 and approximate to 300 cm(-1), a further group of eight states is found, corresponding to the eight permutationally equivalen t versions of yet another isomer, the {uuud} structure. The four {uudd } and eight {uuud} states of (H2O)(4) exhibit inverse isotope effects, and lie at lower energy than their (D2O)(4) counterparts. (C) 1998 Am erican Institute of Physics. [S0021-9606(98)30336-0].