Interstellar chemistry of CN radicals on ices: The formation of CH3CN and CH3NC and potential connection to acetamide

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
J. Enrique-Romero, T. Lamberts
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Abstract

Context. Among the most significant chemical functional groups of interstellar molecules are the class of nitriles, which are suggested to be key prebiotic molecules due to their chemical connection to the peptide bond after hydrolysis. The CN radicals, the simplest representative of this group, have been shown to exhibit strong interactions with interstellar water ices, potentially impacting their reactivity with other radicals nearby.Aims. This study explores (a) whether CN and CH3 radicals can readily react to form methyl cyanide (CH3CN) and its isomer methyl isocyanide (CH3NC) and (b) the feasibility of the reaction (CN···H2O)hemiC(OH) = NH and its potential role in the formation of acetamide.Methods. Following a benchmark, we employed density functional theory to map the potential energy surfaces of these chemical processes, focusing on their reactivity on water and carbon monoxide ices.Results. The results show that CN reacts with CH3 radicals on water ices, efficiently forming CH3CN and CH3NC. However, these reactions are driven by diffusion of CH3 towards the reactive site and subsequently compete with back-diffusion of CH3 from that site. The formation of the radical intermediate C(OH) = NH on water ice requires quantum tunnelling, and assuming that acetimidic acid forms via CH3 + C(OH) = NH → CH3C(OH) = NH, it can also only isomerise into acetamide through a sizeable barrier thanks to quantum tunnelling. Both quantum tunnelling-driven reactions are highly dependent on the local structure of the water ice. Finally, radical coupling reactions on carbon monoxide ices are found to be barrierless for all cases, and again both the cyanide and the isocyanide are formed.Conclusions. This work reinforces the conclusion that CN radicals on interstellar grain surfaces are highly reactive and unlikely to persist unaltered.
冰上CN自由基的星际化学:CH3CN和CH3NC的形成及其与乙酰胺的潜在联系
上下文。在星际分子中最重要的化学官能团是腈类,由于它们在水解后与肽键的化学连接,被认为是关键的益生元分子。•CN自由基是这一基团中最简单的代表,已被证明与星际水冰表现出强烈的相互作用,可能影响它们与附近其他自由基的反应性。本研究探讨了(a) CN和•CH3自由基是否容易反应生成甲基氰化物(CH3CN)及其异构体甲基异氰化物(CH3NC), (b)反应(CN···H2O)hemi→•C(OH) = NH的可行性及其在乙酰胺生成中的潜在作用。根据一个基准,我们采用密度泛函理论来绘制这些化学过程的势能面,重点关注它们对水和一氧化碳的反应性。结果表明:CN与•CH3自由基在水冰上反应,生成CH3CN和CH3NC。然而,这些反应是由•CH3向反应位点的扩散驱动的,随后与•CH3从该位点的反向扩散竞争。自由基中间体•C(OH) = NH在水冰上的形成需要量子隧道效应,假设乙酰胺酸通过CH3 +•C(OH) = NH→CH3C(OH) = NH形成,由于量子隧道效应,它也只能通过相当大的势垒异构成乙酰胺。这两种量子隧穿驱动的反应都高度依赖于水冰的局部结构。最后,发现在一氧化碳冰上的自由基偶联反应在所有情况下都是无障碍的,并且再次形成氰化物和异氰化物。这项工作强化了这样的结论:星际颗粒表面的•CN自由基是高度活性的,不太可能在不改变的情况下持续存在。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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