INTERMOLECULAR VIBRATIONS OF O-XYLENE-CENTER-DOT-AR IN THE S-0 AND S-1 STATES - EXPERIMENT AND QUANTUM 3-DIMENSIONAL CALCULATIONS

Citation
T. Droz et al., INTERMOLECULAR VIBRATIONS OF O-XYLENE-CENTER-DOT-AR IN THE S-0 AND S-1 STATES - EXPERIMENT AND QUANTUM 3-DIMENSIONAL CALCULATIONS, The Journal of chemical physics, 101(8), 1994, pp. 6412-6423
Citations number
48
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
101
Issue
8
Year of publication
1994
Pages
6412 - 6423
Database
ISI
SICI code
0021-9606(1994)101:8<6412:IVOOIT>2.0.ZU;2-6
Abstract
A combined experimental and theoretical study of the intermolecular vi brations of the o-xylene Ar van der Waals complex is reported for both the S-0 and S-1 electronic states. Two-color resonant two-photon ioni zation and fluorescence emission spectra of the vdW mode region of sup ersonic jet-cooled o-xylene Ar exhibit five bands within 70 cm(-1) of the electronic origin, which arise from low-frequency large-amplitude intermolecular vibrations. Accurate quantum 3D calculations of vdW vib rational levels were performed, based on the 3D discrete variable repr esentation. Apart from the restriction to the J=0 state the calculated eigenstates are exact for the intermolecular potential energy surface (PES) employed. The PES is represented as a sum Lennard-Jones (LJ) pa ir potentials, and the direct comparison between theory and experiment enabled calibration of the LJ parameters. Very good agreement was ach ieved for both the S-0 and S-1 states of 0-xylene/Ar. The quantum 3D c alculations provide a quantitative description of the vdW level struct ure up to approximate to 70 cm(-1) above the vdW ground state. The low -energy eigenfunctions have nodal patterns analogous to the 2,3-dimeth ylnaphthalene.Ar complex. However, in the energy range 40-60 cm(-1) th e vdW mode eigenfunctions change over to 2D radial-oscillator-type wav e functions, similar to those of benzene.Ar, but switch back to Cartes ian type above 60 cm(-1). The S1 state vdW levels of 2,3-dimethylnapht halene [M. Mandziuk, Z. Bacic, T. Droz, and S. Leutwyler, J. Chem. Phy s. 100, 52 (1994)] were recalculated with the present parameters, and the agreement between experimental and calculated frequencies is impro ved.