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February 21, 2026The Journal of Physical Chemistry A0 citationsOpen Access

Electron-Induced Fragmentation Dynamics of 1-Methylpyrene (C 17 H 12 ) Dications and Trications: C 2 H x q + Release Pathways

EDEszter DudásMRM. RapacioliPMP Moretto-Capelle

Key Points

  • This research aims to understand the fragmentation behavior of 1-methylpyrene when subjected to electron-induced collisions.
  • Used the SWEET experimental system for ionization studies.
  • Analyzed fragmentation dynamics through collisions with 200 eV electrons.
  • Compared experimental findings with density functional theory simulations.
  • Measured cation signals at varying electron energies (17-35 eV).
  • Identified monocation MP+ as the most abundant species.
  • Observed the stability of dications and trications.
  • Neutral and cationic C2Hx species were the main dissociation products.
  • Higher experimental appearance energies were noted compared to simulated vertical ionization energies.

Abstract

The dissociation behavior of 1-methylpyrene (MP) was investigated by using the SWEET experimental system under electron-induced collisions to elucidate the fragmentation dynamics of polycyclic aromatic hydrocarbon (PAH) ions. Molecular interaction with 200 eV electrons initiated multiple ionization and fragmentation pathways, resulting in molecular cation production. The unfragmented monocation MP+ is identified as the most abundant one, the intact dication MP2+, the de-ethylated dication, and a stable trication MP3+ were also observed, demonstrating the formation and stability (>ms) of highly charged molecular ions. Among the smaller observed hydrocarbon fragments, neutral C2Hx0 and cationic C2Hx+ species were the predominant dissociation products. Experimental findings were compared with density functional theory-based tight-binding molecular dynamics simulations. Measurements of the cation signals as a function of the incident electron energy (17-35 eV) provided appearance energies for the dications and correlated cations. The higher experimental appearance energy values relative to simulated vertical ionization energies suggest the involvement of autoionization processes from initially populated electronically exited states of the molecule.

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Cite This Study

Dudás et al. (2026) studied this question.

synapsesocial.com/papers/69994bdd873532290d01fe84https://doi.org/10.1021/acs.jpca.5c08076
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