Ab initio and quasiclassical trajectory study of the N(D-2) plus NO(X (2)Pi)-> O(D-1)+N-2(X (1)Sigma(+)(g)) reaction on the lowest (1)A(') potential energy surface

Citation
M. Gonzalez et al., Ab initio and quasiclassical trajectory study of the N(D-2) plus NO(X (2)Pi)-> O(D-1)+N-2(X (1)Sigma(+)(g)) reaction on the lowest (1)A(') potential energy surface, J CHEM PHYS, 113(24), 2000, pp. 10983-10998
Citations number
79
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF CHEMICAL PHYSICS
ISSN journal
00219606 → ACNP
Volume
113
Issue
24
Year of publication
2000
Pages
10983 - 10998
Database
ISI
SICI code
0021-9606(200012)113:24<10983:AIAQTS>2.0.ZU;2-I
Abstract
In this work we have carried out ab initio electronic structure calculation s, CASSCF/CASPT2 with the Pople's 6-311G(2d) basis set on the ground single t potential energy surface (1 (1)A' PES) involved in the title reaction. Tr ansition states, minima and one 1 (1)A'/2 (1)A' surface crossing have been characterized, obtaining three NNO isomers with the energy ordering: NNO (( 1)Sigma (+))< cyclic-C-2v NON((1)A(1))< NON((1)Sigma (+)(g)). Approximately 1250 ab initio points have been used to derive an analytical PES which fit s most of the stationary points, with a global root-mean-square deviation o f 1.12 kcal/mol. A quasiclassical trajectory study at several temperatures (300-1500 K) was performed to determine thermal rate constants, vibrational and rovibrational distributions and angular distributions. The dynamics of this barrierless reaction presents a predominant reaction pathway (96% at 300 K) with very short-lived collision complexes around the NNO minimum, wh ich originate backward scattering and a similar fraction of vibrational and translational energy distributed into products. At higher temperatures oth er reaction pathways involving NON structures become increasingly important as well as the N-exchange reaction (3.02% of the branching ratio at 1500 K ), this latter in accord with experimental data. It is concluded that the p hysical electronic quenching of N(D-2) by NO should be negligible against a ll possible N(D-2)+NO reaction channels. (C) 2000 American Institute of Phy sics. [S0021-9606(00)30448-2].