论文标题

重新访问星际谷物表面上HCO和CH $ _3 $之间的反应性

Revisiting the reactivity between HCO and CH$_3$ on interstellar grain surfaces

论文作者

Enrique-Romero, J., Álvarez-Barcia, S., Kolb, F. J., Rimola, A., Ceccarelli, C., Balucani, N., Meisner, J., Ugliengo, P., Lamberts, T., Kästner, J.

论文摘要

星际复合物有机分子的形成目前被认为是由星际冰粒表面上的自由基之间的无障碍耦合所占据的。以前的标准DFT结果是关于$ _3 $和无定形水面上HCO之间的反应性的结果,表明,由HCO从HCO转移到CH $ _3 $的ch $ _4 $ + CO的形成是由冰的水分子辅助的。但是,对Biradical(即CH $ _3 $/HCO)系统的电子结构的采用描述不足(没有断裂对称(BS)方法)。在这项工作中,我们在气相中通过BS-DFT和一个水分子模拟冰的作用来重新审视原始结果。结果表明,必须采用BS-DFT,以描述正确的观点系统。在单个水分子的存在下,水辅助H转移表现出高能屏障。相比之下,发现Ch $ _3 $ CHO形成是无障碍的。但是,直接从HCO转移到CH $ _3 $,以给CO和CH $ _4 $带来了非常低的能源障碍,因此成为激进耦合的潜在竞争渠道,并表明原始工作的物理见解仍然有效。

Formation of interstellar complex organic molecules is currently thought to be dominated by the barrierless coupling between radicals on the interstellar icy grain surfaces. Previous standard DFT results on the reactivity between CH$_3$ and HCO on amorphous water surfaces, showed that formation of CH$_4$ + CO by H transfer from HCO to CH$_3$ assisted by water molecules of the ice was the dominant channel. However, the adopted description of the electronic structure of the biradical (i.e., CH$_3$/HCO) system was inadequate (without the broken-symmetry (BS) approach). In this work, we revisit the original results by means of BS-DFT both in gas phase and with one water molecule simulating the role of the ice. Results indicate that adoption of BS-DFT is mandatory to describe properly biradical systems. In the presence of the single water molecule, the water-assisted H transfer exhibits a high energy barrier. In contrast, CH$_3$CHO formation is found to be barrierless. However, direct H transfer from HCO to CH$_3$ to give CO and CH$_4$ presents a very low energy barrier, hence being a potential competitive channel to the radical coupling and indicating, moreover, that the physical insights ofthe original work remain valid.

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