论文标题

CH3O + H2CO-> CH3OH + HCO反应的首次实验确认:扩展CH3OH形成机理

First experimental confirmation of the CH3O + H2CO -> CH3OH + HCO reaction: expanding the CH3OH formation mechanism in interstellar ices

论文作者

Santos, Julia C., Chuang, Ko-Ju, Lamberts, Thanja, Fedoseev, Gleb, Ioppolo, Sergio, Linnartz, Harold

论文摘要

迄今已被视为在深色分子云中形成甲醇的主要途径,将H原子连续添加到固相中的CO。然而,最近对星际冰的蒙特卡洛模拟也表明,除了CH3O + H-> CH3OH之外,自由分子H原子抽象反应CH3O + H2CO-> CH3OH + HCO是非常有前途的且可能占主导地位的(70-90%)的最终CH3OH的最终步骤。在这里,我们通过实验研究H2CO和D2CO ICES上的氢化反应来比较这两个步骤导致甲醇的贡献,从而确保了两种情况之间的可比起点。实验是在超高真空条件和天文学相关的温度下进行的,H:H2CO(或D2CO)通量比为10:1和30:1。在部分那里立的场景中的自由分子途径CHD2O + D2CO-> CHD2OD + DCO在D-ABSTRATICT过程中的同位素效应显着阻碍,因此可以用作技巧来探测此步骤的效率。与H2CO + H相比,我们观察到D2CO + H产物的产量明显较小,这意味着CH3O诱导的抽象途径必须在星际冰中甲醇的形成中起重要作用。反射吸收红外光谱(RAIRS)和温度编程的解吸 - Quadrupole质谱法(TPD-QMS)分析用于量化冰中的物种。两种分析技术均表明,在10-16 K间隔中,抽象途径的持续贡献约为80%,这与蒙特卡洛的结论非常吻合。其他H2CO + D实验证实了这些结论。

The successive addition of H atoms to CO in the solid phase has been hitherto regarded as the primary route to form methanol in dark molecular clouds. However, recent Monte Carlo simulations of interstellar ices alternatively suggested the radical-molecule H-atom abstraction reaction CH3O + H2CO -> CH3OH + HCO, in addition to CH3O + H -> CH3OH, as a very promising and possibly dominating (70 - 90 %) final step to form CH3OH in those environments. Here, we compare the contributions of these two steps leading to methanol by experimentally investigating hydrogenation reactions on H2CO and D2CO ices, which ensures comparable starting points between the two scenarios. The experiments are performed under ultrahigh vacuum conditions and astronomically relevant temperatures, with H:H2CO (or D2CO) flux ratios of 10:1 and 30:1. The radical-molecule route in the partially deuterated scenario, CHD2O + D2CO -> CHD2OD + DCO, is significantly hampered by the isotope effect in the D-abstraction process, and can thus be used as an artifice to probe the efficiency of this step. We observe a significantly smaller yield of D2CO + H products in comparison to H2CO + H, implying that the CH3O-induced abstraction route must play an important role in the formation of methanol in interstellar ices. Reflection-Absorption InfraRed Spectroscopy (RAIRS) and Temperature Programmed Desorption-Quadrupole Mass Spectrometry (TPD-QMS) analyses are used to quantify the species in the ice. Both analytical techniques indicate constant contributions of ~80 % for the abstraction route in the 10 - 16 K interval, which agrees well with the Monte Carlo conclusions. Additional H2CO + D experiments confirm these conclusions.

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