Theoretical study on the mechanism of the 1CHCL + NO2 reactions

Jia Xu Zhang, Jing Yao Liu, Ze Sheng Li*, Chia Chung Sun

*Corresponding author for this work

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Abstract

The radical-molecule reaction mechanism of 1CHCl with NO 2 has been explored theoretically at the B3LYP/6-311G(d, p) and CCSD(T)/6-311G(d, p) (single-point) levels of theory. Thirteen minimum isomers and 29 transition states are located. The initial association between 1CHCl and NO2 proceeds most likely through the carbon-to-middle-nitrogen attack leading to an energy-rich adduct a (HClCNO 2), which is found to be a barrierless process. Staring from a, the most feasible channel is to undergo a concerted O-shift and C - N bond rupture leading to product P2 (NO + HClCO). The minor product pathways are the direct O-extrusion of a to P3 (O + HClCNO-cis) as well as the 1,3-H-shift of a to isomer b (ClCNOOH) followed by a concerted OH-shift leading to d (HOClCNO), which will dissociate to product P8 (NO + ClCOH) via C - N cleavage. Because the transition states and isomers involved in the most feasible channel all lie below the reactants, the title reaction is expected to be rapid, as is consistent with the measured rate constant at 296 K. The comparison with the analogous reactions 3CH2 + NO 2 are discussed. The present study may be useful for further experimental investigation of the title reaction.

Original languageEnglish
Pages (from-to)1184-1190
Number of pages7
JournalJournal of Computational Chemistry
Volume25
Issue number9
DOIs
Publication statusPublished - 15 Jul 2004
Externally publishedYes

Keywords

  • Chlorizated carbine (CHCl)
  • Nitric dioxide (NO)
  • Potential energy surface (PES)
  • Reaction mechanism
  • Theoretical calculations

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Zhang, J. X., Liu, J. Y., Li, Z. S., & Sun, C. C. (2004). Theoretical study on the mechanism of the 1CHCL + NO2 reactions. Journal of Computational Chemistry, 25(9), 1184-1190. https://doi.org/10.1002/jcc.20043