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Synthesis of complex organic molecules in simulated methane rich astrophysical ices

机译:模拟甲烷富甲烷的复合有机分子的合成

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It has been proposed that organic molecules required for life on earth may be formed by the radiation processing of molecular ices in space environments, e.g., within our solar system. Such processes can be studied in the laboratory with surface science analytical techniques and by using low-energy electron (LEE) irradiation to simulate the effects of the secondary electrons that are generated in great abundance whenever ionizing radiation interacts with matter. Here we present new measurements of 70 eV LEE irradiation of multilayer films of CH4, O-18(2), and CH4/O-18(2) mixtures (3: 1 ratio) at 22 K. The electron stimulated desorption (ESD) yields of cations and anions have been recorded as a function of electron fluence. At low fluence, the prompt desorption of more massive multi-carbon or C-O containing cationic fragments agrees with our earlier measurements. However, new anion ESD signals of C-2(-), C2H-, and C2H2- from CH4/O-18(2) mixtures increase with fluence, indicating the gradual synthesis (and subsequent electron-induced fragmentation) of new, more complex species containing several C and possibly O atoms. Comparisons between the temperature programed desorption (TPD) mass spectra of irradiated and unirradiated films showthe electron-induced formation of newchemical species, the identities of which are confirmed by reference to the NIST database of electron impact mass spectra and by TPD measurements of films composed of the proposed products. New species observed in the TPD of irradiated mixture films include C3H6, C2H5OH, and C2H6. Furthermore, X-ray photoelectron spectroscopy of irradiated films confirms the formation of C-O, C=O, and O=C-O bonds of newly formed molecules. Our experiments support the view that secondary LEEs produced by ionizing radiation drive the chemistry in irradiated ices in space, irrespective of the radiation type. Published by AIP Publishing.
机译:已经提出了地球上生命所需的有机分子可以通过空间环境中的分子冰的辐射处理,例如,在我们的太阳系内。这些方法可以在实验室具​​有表面科学分析技术,并且通过使用低能量电子(LEE)辐射,以模拟在电离辐射与物质相互作用的巨大富裕时产生的二次电子的影响。在这里,我们在22K时呈现了CH4,O-18(2)和CH4 / O-18(2)混合物(3:1比)的多层膜的70 eV Lee辐射的新测量。电子刺激的解吸(ESD)阳离子和阴离子的产量已被记录为电子流量的函数。在低气流量下,提示含有阳离子碎片的更多大量多碳或C-O的解吸与我们之前的测量相一致。然而,来自C-2( - ),C2H-和C2H2-的新的阴离子ESD信号,来自CH4 / O-18(2)混合物的流量增加,表明新的,更多的逐渐合成(和随后的电子诱导的碎片)含有几种C和可能的O原子的复杂物种。辐照和未照射膜的温度编程解吸(TPD)质谱之间的比较显示电子诱导的新化学物质的形成,其相同的身份通过参考电子冲击质谱和由TPD测量组成的薄膜拟议产品。在辐照混合物膜的TPD中观察到的新物种包括C3H6,C 2 HOH和C2H6。此外,辐射膜的X射线光电子能谱证实了新形成分子的C-O,C = O和O = C-O键的形成。我们的实验支持该视图,即通过电离辐射产生的次级李斯在空间中的辐照冰中驱动化学,而不管辐射型如何。通过AIP发布发布。

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