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DOE OSTI · 3728571

The Reaction of Atomic Hydrogen with an Imine: Direct Kinetic Measurements and Computational Studies

Abstract

Imines are of interest in the combustion modeling of nitrogen-based fuels such as ammonia, as intermediates in atmospheric oxidation of amines, and may offer a new class of environmentally benign substitutes for perhalogenated reagents. Elementary gas-phase rate constants for the consumption of H atoms by 1,1,1,3,3,3-hexafluoro-2-propanimine were measured over 294–736 K using the laser flash photolysis/atomic resonance fluorescence technique. The results are summarized as 3.0 × 10 –11 exp(−14.5 kJ mol –1 /RT) cm 3 molecule –1 s –1 with a confidence interval of ±13%. These are the first temperature-dependent kinetic experiments on an imine of the form R 2 C═NH and thereby provide the only validation of transition-state modeling for such systems. Several pathways are feasible; comparison of theory and experiment suggests the dominant channel is addition of H atoms to the nitrogen atom. On this basis, the observations are rationalized quantitatively. Computations also yield the thermochemistry of (CF 3 ) 2 CNH, with Δ f H 298 = −1232 kJ mol –1 .

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BibTeXRIS

Savi, Savi [Univ. of North Texas, Denton, TX (United States)], Marshall, Paul [Univ. of North Texas, Denton, TX (United States)] (ORCID:000000028181983X). 2026-08-28. The Reaction of Atomic Hydrogen with an Imine: Direct Kinetic Measurements and Computational Studies. https://doi.org/10.1021/acs.jpca.6c04790

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