journal article text

Theoretical study on the reactions of CH<sub>3</sub>NHNH<sub>2</sub> with ground state O(<sup>3</sup>P) atom and excited state O(<sup>1</sup>D) atom

Abstract

<p>The reaction mechanisms of methylhydrazine (CH<sub>3</sub>NHNH<sub>2</sub>) with O(<sup>3</sup>P) and O(<sup>1</sup>D) atoms have been explored theoretically at the MPW1K/6-311+G(d,p), MP2/6-311+G(d,p), MCG3-MPWPW91 (single-point), and CCSD(T)/cc-pVTZ (single-point) levels. The triplet potential energy surface for the reaction of CH<sub>3</sub>NHNH<sub>2</sub> with O(<sup>3</sup>P) includes seven stable isomers and eight transition states. When the O(<sup>3</sup>P) atom approaches CH<sub>3</sub>NHNH<sub>2</sub>, the heavy atoms, namely N and C atoms, are the favourable combining points. O(<sup>3</sup>P) atom attacking the middle-N atom in CH<sub>3</sub>NHNH<sub>2</sub> results in the formation of an energy-rich isomer (CH<sub>3</sub>NHONH<sub>2</sub>) followed by migration of O(<sup>3</sup>P) atom from middle-N atom to middle-H atom leading to the product P6 (CH<sub>3</sub>NNH<sub>2</sub>+OH), which is one of the most favourable routes. The estimated major product CH<sub>3</sub>NNH<sub>2</sub> is consistent with the experimental measurements. Reaction of O(<sup>1</sup>D) + CH<sub>3</sub>NHNH<sub>2</sub> presents different features as compared with O(<sup>3</sup>P) + CH<sub>3</sub>NHNH<sub>2</sub>. O(<sup>1</sup>D) atom will first insert into C–H2, N1–H4, and N2–H5 bonds barrierlessly to form the three adducts, respectively. There are two most favourable paths for O(<sup>1</sup>D) + CH<sub>3</sub>NHNH<sub>2</sub>. One is that the C–N bond cleavage accompanied by a concerted H shift from O atom to N atom (mid-N) leads to the product P<sub>I</sub> (CH<sub>2</sub>O + NH<sub>2</sub>NH<sub>2</sub>), and the other is that the N–N bond rupture along with a concerted H shift from O to N (end-N) forms P<sub>IV</sub> (CH<sub>3</sub>NH<sub>2</sub> + HNO). The similarities and discrepancies between two reactions are discussed.</p

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