Polycyclic aromatic hydrocarbons (PAHs), comprised of fused benzene (C 6 H 6 ) rings, emit infrared radiation (3–12 μ m) due to the vibrational transitions of the C–H bonds of the aromatic rings. The 3.3 μ m aromatic band is generally accompanied by the band at 3.4 μ m assigned to the vibration of aliphatic C–H bonds of compounds such as PAHs with an excess of peripheral H atoms (H n –PAHs). Herein we study the stability of fully hydrogenated benzene (or cyclohexane, C 6 H 12 ) under the impact of stellar radiation in the photodissociation region (PDR) of NGC 7027. Using synchrotron radiation and time-of-flight mass spectrometry, we investigated the ionization and dissociation processes at energy ranges of UV (10–200 eV) and soft X-rays (280–310 eV). Density Functional Theory (DFT) calculations were used to determine the most stable structures and the relevant low-lying isomers of singly charged C 6 H 12 ions. Partial Ion Yield (PIY) analysis gives evidence of the higher tendency toward dissociation of cyclohexane in comparison to benzene. However, because of the high photoabsorption cross-section of benzene at the C1s resonance edge, its photodissociation and photoionization cross-sections are enhanced, leading to a higher efficiency of dissociation of benzene in the PDR of NGC 7027. We suggest that a similar effect is experienced by PAHs in X-ray photon-rich environments, which ultimately acts as an auxiliary protection mechanism of super-hydrogenated polycyclic hydrocarbons. Finally, we propose that the single photoionization of cyclohexane could enhance the abundance of branched molecules in interstellar and circumstellar media.
CITATION STYLE
Quitián-Lara, H. M., Fantuzzi, F., Nascimento, M. A. C., Wolff, W., & Boechat-Roberty, H. M. (2018). Hydrogenated Benzene in Circumstellar Environments: Insights into the Photostability of Super-hydrogenated PAHs. The Astrophysical Journal, 854(1), 61. https://doi.org/10.3847/1538-4357/aaa977
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