AI Article Synopsis

  • * The research focuses on the cationic form of 1-CNN, analyzing its unimolecular dissociation and radiative cooling rates through experiments that mimic interstellar conditions.
  • * Findings show that a process called Recurrent Fluorescence helps stabilize 1-CNN, which suggests that small PAHs might not be destroyed as quickly in space as commonly believed.

Article Abstract

After decades of searching, astronomers have recently identified specific Polycyclic Aromatic Hydrocarbons (PAHs) in space. Remarkably, the observed abundance of cyanonaphthalene (CNN, CHCN) in the Taurus Molecular Cloud (TMC-1) is six orders of magnitude higher than expected from astrophysical modeling. Here, we report unimolecular dissociation and radiative cooling rate coefficients of the 1-CNN isomer in its cationic form. These results are based on measurements of the time-dependent neutral product emission rate and kinetic energy release distributions produced from an ensemble of internally excited 1-CNN studied in an environment similar to that in interstellar clouds. We find that Recurrent Fluorescence - radiative relaxation via thermally populated electronic excited states - efficiently stabilizes 1-CNN, owing to a large enhancement of the electronic transition probability by vibronic coupling. Our results help explain the anomalous abundance of CNN in TMC-1 and challenge the widely accepted picture of rapid destruction of small PAHs in space.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9873784PMC
http://dx.doi.org/10.1038/s41467-023-36092-0DOI Listing

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