Department of Chemistry and W. M. Keck Research Laboratory in Astrochemistry, University of Hawai'i at Manoa, 2545 McCarthy Mall, Honolulu, HI, 96822, USA.
Chemphyschem. 2021 Jun 16;22(12):1229-1236. doi: 10.1002/cphc.202100111. Epub 2021 May 28.
Owing to the unique conditions in cold molecular clouds, enols-the thermodynamically less stable tautomers of aldehydes and ketones-do not undergo tautomerization to their more stable tautomers in the gas phase because they cannot overcome tautomerization barriers at the low temperatures. Laboratory studies of interstellar analog ices have demonstrated the formation of several keto-enol tautomer pairs in astrochemically relevant ice mixtures over the last years. However, so far only one of them, acetaldehyde-vinyl alcohol, has been detected in deep space. Due to their reactivity with electrophiles, enols can play a crucial role in our understanding of the molecular complexity in the interstellar medium and in comets and meteorites. To study the enolization of aldehydes in interstellar ices by interaction with galactic cosmic rays (GCRs), we irradiated acetaldehyde ices with energetic electrons as proxies of secondary electrons generated in the track of GCRs while penetrating interstellar ices. The results indicate that GCRs can induce enolization of acetaldehyde and that intra- as well as intermolecular processes are relevant. Therefore, enols should be ubiquitous in the interstellar medium and could be searched for using radio telescopes such as ALMA. Once enols are detected and abundances are established, they can serve as tracers for the non-equilibrium chemistry in interstellar ices thus eventually constraining fundamental reaction mechanisms deep inside interstellar ices.
由于冷分子云中的独特条件,烯醇(醛和酮的热力学上不太稳定的互变异构体)在气相中不会发生互变异构化以形成其更稳定的互变异构体,因为它们无法克服低温下的互变异构化势垒。近年来,对星际模拟冰的实验室研究已经证明,在与天体化学相关的冰混合物中形成了几种酮-烯醇互变异构对。然而,到目前为止,只有一种,乙醛-乙烯醇,在深空中被检测到。由于它们与亲电试剂的反应性,烯醇可以在我们对星际介质和彗星和陨石中分子复杂性的理解中发挥关键作用。为了研究星际冰中醛的烯醇化与银河宇宙射线(GCR)的相互作用,我们用高能电子辐照乙醛冰,这些电子模拟了 GCR 在穿透星际冰时在其轨迹中产生的次级电子。结果表明,GCR 可以诱导乙醛的烯醇化,并且涉及分子内和分子间过程。因此,烯醇应该在星际介质中无处不在,可以使用 ALMA 等射电望远镜进行搜索。一旦检测到烯醇并确定其丰度,它们可以作为星际冰中非平衡化学的示踪剂,从而最终限制星际冰内部的基本反应机制。