论文标题

热处理和电子辐照的CO2天体冰类似物中IR和VUV光谱表征

Mid-IR and VUV Spectroscopic Characterisation of Thermally Processed and Electron Irradiated CO2 Astrophysical Ice Analogues

论文作者

Mifsud, DV, Kaňuchová, Z, Ioppolo, S, Herczku, P, Muiña, A Traspas, Field, TA, Hailey, PA, Juhász, Z, Kovács, STS, Mason, NJ, McCullough, RW, Pavithraa, S, Rahul, KK, Paripás, B, Sulik, B, Chou, SL, Lo, JI, Das, A, Cheng, BM, Rajasekhar, BN, Bhardwaj, A, Sivaraman, B

论文摘要

二氧化碳化学类似物的天体化学一直是一个深入研究的话题,这是由于二氧化碳在整个星际培养基和太阳系中的普遍存在,以及它作为合成更大,更复杂的有机分子的碳原料的可能性。为了准确辨别二氧化碳发挥作用的物理化学过程,必须让实验室生成的光谱与地面和空间基望远镜获得的观察数据进行比较。已知会影响这种光谱外观的关键因素是温度,尤其是在红外和紫外线中获得光谱时。在本研究中,我们描述了一项系统研究的结果:(i)热退火对在各种温度下制备的纯,非辐照CO2天体物理冰类似物的中IR和VUV吸收光谱的影响,以及(ii)温度对类似矿石电子受发射产物的影响。我们的结果表明,纯二氧化碳的MID-IR和VUV光谱都对通过热退火引起的结构和化学变化敏感。此外,使用MID-IR光谱法,我们成功地确定了由于1 keV电子照射和温度对该化学的影响,因此成功地鉴定了放射性儿女分子的产生。此类结果直接适用于关于星际冰,彗星和冰上月球对象的化学研究的研究,并且也可能是即将进行的观察任务的参考数据。

The astrochemistry of CO2 ice analogues has been a topic of intensive investigation due to the prevalence of CO2 throughout the interstellar medium and the Solar System, as well as the possibility of it acting as a carbon feedstock for the synthesis of larger, more complex organic molecules. In order to accurately discern the physico-chemical processes in which CO2 plays a role, it is necessary to have laboratory-generated spectra to compare against observational data acquired by ground- and space-based telescopes. A key factor which is known to influence the appearance of such spectra is temperature, especially when the spectra are acquired in the infrared and ultraviolet. In this present study, we describe the results of a systematic investigation looking into: (i) the influence of thermal annealing on the mid-IR and VUV absorption spectra of pure, unirradiated CO2 astrophysical ice analogues prepared at various temperatures, and (ii) the influence of temperature on the chemical products of electron irradiation of similar ices. Our results indicate that both mid-IR and VUV spectra of pure CO2 ices are sensitive to the structural and chemical changes induced by thermal annealing. Furthermore, using mid-IR spectroscopy, we have successfully identified the production of radiolytic daughter molecules as a result of 1 keV electron irradiation and the influence of temperature over this chemistry. Such results are directly applicable to studies on the chemistry of interstellar ices, comets, and icy lunar objects and may also be useful as reference data for forthcoming observational missions.

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