论文标题

天文学模型研究了具有逼真的结合能的热分子芯中分支碳链分子的丰度

Astrochemical model to study the abundances of branched carbon-chain molecules in a hot molecular core with realistic binding energies

论文作者

Srivastav, Satyam, Sil, Milan, Gorai, Prasanta, Pathak, Amit, Sivaraman, Bhalamurugan, Das, Ankan

论文摘要

直链(正常氰化物,N-C3H7CN)和分支链(ISO-丙基氰化物,I-C3H7CN)烷基氰化烷基化烷基氰化物(SGR B2(N)和Orion)。这些分支链分子表明,关键的氨基酸(侧链结构)也可能存在于相似的区域。该分支可以向高阶(丁基氰化物,C4H9CN)传播的过程是一个活跃的研究领域。由于晶粒催化过程可能已经形成了这些物种的主要部分,因此考虑到现实的结合能确实是必不可少的。我们采用量子化学计算来估计考虑水作为底物的这些物种的结合能,因为水是该星际冰的主要组成部分。我们发现这些物种的结合能值明显低于以前使用的。注意到,使用现实的结合能值可以显着改变这些物种的丰度。分支对具有新结合能的高阶烷基氰化物更有利。随着我们的新结合能值和一个必不可少的破坏反应(I -C3H7CN + H-> CH3C(CH3)CN + H2,激活屏障为947 K),t -C4H9CN的丰度急剧增加。

Straight-chain (normal-propyl cyanide, n - C3H7CN) and branched-chain (iso-propyl cyanide, i - C3H7CN) alkyl cyanides are recently identified in the massive star-forming regions (Sgr B2(N) and Orion). These branched-chain molecules indicate that the key amino acids (side-chain structures) may also be present in a similar region. The process by which this branching could propagate towards the higher-order (butyl cyanide, C4H9CN) is an active field of research. Since the grain catalysis process could have formed a major portion of these species, considering a realistic set of binding energies are indeed essential. We employ quantum chemical calculations to estimate the binding energy of these species considering water as a substrate because water is the principal constituent of this interstellar ice. We find significantly lower binding energy values for these species than were previously used. It is noticed that the use of realistic binding energy values can significantly change the abundance of these species. The branching is more favorable for the higher-order alkyl cyanides with the new binding energies. With the inclusion of our new binding energy values and one essential destruction reaction (i - C3H7CN + H -> CH3C(CH3)CN + H2, having an activation barrier of 947 K), abundances of t - C4H9CN dramatically increased.

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