论文标题

氮对固有核心痕迹同位素选择性光解离的分级分离

Nitrogen fractionation towards a pre-stellar core traces isotope-selective photodissociation

论文作者

Spezzano, Silvia, Caselli, Paola, Sipilä, Olli, Bizzocchi, Luca

论文摘要

同位素学丰度比率对于了解天体物理对象的演变以及最终像我们自己一样的行星系统的起源很重要。作为氮是益生元材料的基本要素,了解其化学和遗传对于理解生命的基础的形成至关重要。我们在这里提出了$^{13} $ C和$^{15} $ n HCN,HNC和CN的$^{13} $ c和$^{15} $ n同位素的单次观察结果,其中IRAM 30M望远镜。我们分析其列密度并计算HCN的$^{14} $ n/$^{15} $ n比率图。 CN和HNC的$^{15} $ n-算法是针对L1544的不同偏移计算的。 The $^{15}$N-fractionation map of HCN shows a clear decrease of the $^{14}$N/$^{15}$N ratio towards the southern edge of L1544, where carbon chain molecules present a peak, strongly suggesting that isotope-selective photodissociation has a strong effect on the fractionation of nitrogen across pre-stellar cores. $^{14} $ n/$^{15} $ n比率在核心上的四个位置测量的$ n比率也显示出对核心东南的减小,而HNC则显示相反的行为。固有核心L1544的不均匀照明提供了明确的证据,表明HCN和CN的$^{15} $ n-误分级被增强到更暴露于星际辐射场的区域。 N $ _2 $的同位素选择光解离是一个关键的过程,可以理解$^{15} $ n分馏,如Protoplanetary磁盘中已经发现。因此,预计在固有材料中的$^{15} $ n-算法将根据嵌入前核心内核的环境而改变。 $^{12} $ cn/$^{13} $ cn比率在整个核心方面也有所不同,但其变化并不影响我们对环境对氮的影响的结论。

Isotopologue abundance ratios are important to understand the evolution of astrophysical objects and ultimately the origins of a planetary system like our own. Being nitrogen a fundamental ingredient of pre-biotic material, understanding its chemistry and inheritance is of fundamental importance to understand the formation of the building blocks of life. We present here single-dish observations of the ground state rotational transitions of the $^{13}$C and $^{15}$N isotopologues of HCN, HNC and CN with the IRAM 30m telescope. We analyse their column densities and compute the $^{14}$N/$^{15}$N ratio map for HCN. The $^{15}$N-fractionation of CN and HNC is computed towards different offsets across L1544. The $^{15}$N-fractionation map of HCN shows a clear decrease of the $^{14}$N/$^{15}$N ratio towards the southern edge of L1544, where carbon chain molecules present a peak, strongly suggesting that isotope-selective photodissociation has a strong effect on the fractionation of nitrogen across pre-stellar cores. The $^{14}$N/$^{15}$N ratio in CN measured towards four positions across the core also shows a decrease towards the South-East of the core, while HNC shows opposite behaviour. The uneven illumination of the pre-stellar core L1544 provides clear evidence that $^{15}$N-fractionation of HCN and CN is enhanced toward the region more exposed to the interstellar radiation field. Isotope-selective photodissociation of N$_2$ is then a crucial process to understand $^{15}$N fractionation, as already found in protoplanetary disks. Therefore, the $^{15}$N-fractionation in pre-stellar material is expected to change depending on the environment within which pre-stellar cores are embedded. The $^{12}$CN/$^{13}$CN ratio also varies across the core, but its variation does not affect our conclusions on the effect of the environment on the fractionation of nitrogen.

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