论文标题

自由基化学在冰冷表面上的量子机械模拟

Quantum mechanical simulations of the radical-radical chemistry on icy surfaces

论文作者

Enrique-Romero, Joan, Rimola, Albert, Ceccarelli, Ugliengo, Piero, Balucani, Nadia, Skouteris, Dimitrios

论文摘要

星际复合物有机分子(ICOM)的形成是星体化学的热门话题。试图再现观测结果的主要范式之一假定,由于自由基 - 激进的耦合反应,覆盖了星际粉尘晶粒的冰层上形成了Icom。 我们通过计算量子力学方法研究了冰上表面上的Icoms形成。 In particular, we study the coupling and direct hydrogen abstraction reactions involving the CH$_3$ + X systems (X = NH$_2$, CH$_3$, HCO, CH$_3$O, CH$_2$OH) and HCO + Y (Y = HCO, CH$_3$O, CH$_2$OH), plus the CH$_2$OH + CH$_2$OH and ch $ _3 $ o + ch $ _3 $ o系统。 我们通过密度功能理论(DFT)计算了由33和18水分子制成的两个冰水模型上的密度功能理论(DFT)计算,计算了这些反应的活化能屏障以及所有研究的自由基的结合能。然后,我们使用反应激活,解吸和扩散能和衍生的动力学估算了每个反应的效率。 我们发现在表面上的自由基化学不像通常假设的那样简单。在某些情况下,直接的H抽象反应可以与自由基 - 激进的耦合竞争,而在其他情况下,它们可能包含大型激活能。具体而言,我们发现(i)乙烷,甲胺和乙二醇是相关自由基反应的唯一可能产物。 (ii)乙二醛,甲基甲酸,甘油醛,甲酰胺,二甲基醚和乙醇形成可能与各自的H-抗刺激产物竞争,以及(iii)乙醛和过氧化二甲基氧化二甲醛似乎并不可能是可能的谷物表面产物。

The formation of the interstellar complex organic molecules (iCOMs) is a hot topic in astrochemistry. One of the main paradigms trying to reproduce the observations postulates that iCOMs are formed on the ice mantles covering the interstellar dust grains as a result of radical--radical coupling reactions. We investigate iCOMs formation on the icy surfaces by means of computational quantum mechanical methods. In particular, we study the coupling and direct hydrogen abstraction reactions involving the CH$_3$ + X systems (X = NH$_2$, CH$_3$, HCO, CH$_3$O, CH$_2$OH) and HCO + Y (Y = HCO, CH$_3$O, CH$_2$OH), plus the CH$_2$OH + CH$_2$OH and CH$_3$O + CH$_3$O systems. We computed the activation energy barriers of these reactions as well as the binding energies of all the studied radicals, by means of density functional theory (DFT) calculations on two ice water models, made of 33 and 18 water molecules. Then, we estimated the efficiency of each reaction using the reaction activation, desorption and diffusion energies and derived kinetics with the Eyring equations. We find that radical--radical chemistry on surfaces is not as straightforward as usually assumed. In some cases, direct H abstraction reactions can compete with radical--radical couplings, while in others they may contain large activation energies. Specifically, we found that (i) ethane, methylamine and ethylene glycol are the only possible products of the relevant radical--radical reactions; (ii) glyoxal, methyl formate, glycolaldehyde, formamide, dimethyl ether and ethanol formation is likely in competition with the respective H-abstraction products, and (iii) acetaldehyde and dimethyl peroxide do not seem a likely grain surface products.

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