We study the competing mechanisms involved in the Coulomb explosion of 2-propanol CH CHOH dication, formed by an ultrafast extreme ultraviolet pulse. Over 20 product channels are identified and characterized using 3D coincidence imaging of the ionic fragments. The momentum correlations in the three-body fragmentation channels provide evidence for a dominant sequential mechanism, starting with the cleavage of a C-C bond, ejecting CH and CHCHOH cations, followed by a secondary fragmentation of the hydroxyethyl cation that can be delayed for up to a microsecond after ionization. The C-O bond dissociation channels are less frequent, involving proton transfer and double proton transfer, forming HO and HO products, respectively, and exhibiting mixed sequential and concerted character. These results can be explained by the high potential barrier for the C-O bond dissociation seen in our ab initio quantum chemical calculations. We also observe coincident COH + CH ions, suggesting exotic structural rearrangements, starting from the Frank-Condon geometry of the neutral 2-propanol system. Remarkably, the relative yield of the H product is suppressed compared with methanol and alkene dications. Ab initio potentials and ground state molecular dynamics simulations show that a rapid and direct C-C bond cleavage dominates the Coulomb explosion process, leaving no time for H roaming, which is a necessary precursor to the H formation.

Download full-text PDF

Source
http://dx.doi.org/10.1063/5.0098531DOI Listing

Publication Analysis

Top Keywords

c-o bond
12
bond dissociation
12
coulomb explosion
12
sequential concerted
8
explosion 2-propanol
8
c-c bond
8
proton transfer
8
bond
5
concerted c-c
4
c-c c-o
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!