Melli Alessio, Melosso Mattia, Bizzocchi Luca, Alessandrini Silvia, Jiang Ningjing, Tonolo Francesca, Boi Salvatore, Castellan Giorgia, Sapienza Carlotta, Guillemin Jean-Claude, Dore Luca, Puzzarini Cristina
Dipartimento di Chimica "Giacomo Ciamician", Università di Bologna, Via F. Selmi 2, 40126 Bologna, Italy.
Scuola Normale Superiore, Piazza dei Cavalieri 7, 56126 Pisa, Italy.
J Phys Chem A. 2022 Sep 15;126(36):6210-6220. doi: 10.1021/acs.jpca.2c05018. Epub 2022 Aug 31.
Several interstellar molecules are highly reactive unsaturated carbon chains, which are unstable under terrestrial conditions. Laboratory studies in support of their detection in space thus face the issue of how to produce these species and how to correctly model their rotational energy levels. In this work, we introduce a general approach for producing and investigating unsaturated carbon chains by means of selected test cases. We report a comprehensive theoretical/experimental spectroscopic characterization of three species, namely, propadienone, cyanovinylacetylene, and allenylacetylene, all of them being produced by means of flash vacuum pyrolysis of a suitable precursor. For each species, quantum-chemical calculations have been carried out with the aim of obtaining accurate predictions of the missing spectroscopic information required to guide spectral analysis and assignment. Rotational spectra of the title molecules have been investigated up to 400 GHz by using a frequency-modulation millimeter-/submillimeter-wave spectrometer, thus significantly extending spectral predictions over a wide range of frequency and quantum numbers. A comparison between our results and those available in the literature points out the clear need of the reported laboratory measurements at higher frequencies for setting up accurate line catalogs for astronomical searches.
几种星际分子是高反应性的不饱和碳链,在地球条件下不稳定。因此,支持在太空中检测到它们的实验室研究面临着如何产生这些物种以及如何正确模拟其转动能级的问题。在这项工作中,我们通过选定的测试案例介绍了一种产生和研究不饱和碳链的通用方法。我们报告了三种物种,即丙二烯酮、氰基乙烯基乙炔和丙二烯基乙炔的全面理论/实验光谱表征,所有这些都是通过对合适的前体进行快速真空热解产生的。对于每个物种,都进行了量子化学计算,目的是获得准确预测引导光谱分析和归属所需的缺失光谱信息。使用调频毫米波/亚毫米波光谱仪对标题分子的转动光谱进行了高达400 GHz的研究,从而在很宽的频率和量子数范围内显著扩展了光谱预测。我们的结果与文献中现有结果的比较指出,显然需要在更高频率下进行所报告的实验室测量,以便为天文搜索建立准确的谱线目录。