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arXiv · 2303.04916

Time-resolved imaging of an elusive molecular reaction: hydrogen roaming in acetonitrile

Abstract

Roaming has been proposed as a possible mechanism contributing to molecular dissociation in which the fragments can move around one another at relatively large intermolecular distances before separating entirely. While roaming, there is sufficient time for other processes to occur, which can lead to the formation of new molecular compounds. Due to the neutral character of the roaming fragments, they follow a rather indeterminate trajectory, thus complicating their identification and systematic study. Here, we temporally resolve the roaming of $H_2$ from ionized acetonitrile, $CH_3CN$. Using intense, femtosecond IR radiation combined with coincident Coulomb explosion imaging, we can directly reconstruct the momentum of the roaming $H_2$, thereby gaining an unambiguous, experimental signature of roaming as well as a kinematically complete picture of the underlying molecular dynamics. Afterward, a portion of the neutral $H_2$ molecules forms $H_3^+$ ions, an important cation in astrophysics, through proton transfer within a few hundred femtoseconds. With the aid of quantum chemistry calculations, we can fully determine how this unique dissociative process occurs.

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Debadarshini Mishra, Aaron C. LaForge, Lauren M. Gorman, Sergio Díaz-Tendero, Fernando Martín, Nora Berrah. 2023-07-03. Time-resolved imaging of an elusive molecular reaction: hydrogen roaming in acetonitrile. https://arxiv.org/abs/2303.04916

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