论文标题
泰坦的富含氮有机链中缺少的链接
A missing link in the nitrogen-rich organic chain on Titan
论文作者
论文摘要
语境。生命的化学基础包含很大一部分氮,这是必不可少的元素。泰坦(Titan)是土星最大的月亮,其分子氮和甲烷的密集气氛为探索如何通过太阳系中的大气化学融合到碳链中提供了极大的机会。在大气中始终产生褐色的薄雾,并在月球表面积聚。这种固体物质富含氮,可能包含携带氮的益生元分子。目标。迄今为止,我们对导致氮掺入有机链的过程的了解非常有限。在目前的工作中,我们研究了模拟泰坦上层大气层的实验中含氮离子的形成,对将氮掺入泰坦的有机物中具有很大的影响。方法。通过结合实验和理论计算,我们表明,高海拔在高海拔地区产生的大量N2+离子能够形成富含氮的有机物质。结果。在暴露由分子氮和甲烷组成的气体混合物中时,可以在实验上观察到CH3N2+和CH2N2+重氮离子的意外而重要的形成。我们的理论计算表明,这些重氮离子主要由N2+与CH3自由基的反应产生。这些小的富含氮的重氮离子为两个,似乎是缺失的链接,可以解释泰坦有机物中高氮含量。更普遍地,这项工作强调了离子和自由基之间反应的重要性,到目前为止很少研究这些反应,从而开辟了新的天文学观点。
Context. The chemical building blocks of life contain a large proportion of nitrogen, an essential element. Titan, the largest moon of Saturn, with its dense atmosphere of molecular nitrogen and methane, offers an exceptional opportunity to explore how this element is incorporated into carbon chains through atmospheric chemistry in our Solar System. A brownish dense haze is consistently produced in the atmosphere and accumulates on the surface on the moon. This solid material is nitrogen-rich and may contain prebiotic molecules carrying nitrogen. Aims. To date, our knowledge of the processes leading to the incorporation of nitrogen into organic chains has been rather limited. In the present work, we investigate the formation of nitrogen-bearing ions in an experiment simulating Titan s upper atmosphere, with strong implications for the incorporation of nitrogen into organic matter on Titan. Methods. By combining experiments and theoretical calculations, we show that the abundant N2+ ion, produced at high altitude by extreme-ultraviolet solar radiation, is able to form nitrogen-rich organic species. Results. An unexpected and important formation of CH3N2+ and CH2N2+ diazo-ions is experimentally observed when exposing a gas mixture composed of molecular nitrogen and methane to extreme-ultraviolet radiation. Our theoretical calculations show that these diazo-ions are mainly produced by the reaction of N2+ with CH3 radicals. These small nitrogen-rich diazo-ions, with a N/C ratio of two, appear to be a missing link that could explain the high nitrogen content in Titan s organic matter. More generally, this work highlights the importance of reactions between ions and radicals, which have rarely been studied thus far, opening up new perspectives in astrochemistry.