星际介质中第一个检测到的甘氨酸异构体:糖酰胺(NH2C(O)CH2OH)

V. Rivilla, M. Sanz-Novo, Izaskun Jim'enez-Serra, Jesús Martín-Pintado, L. Colzi, S. Zeng, Andr'es Meg'ias, Á. López-Gallifa, Antonio Mart'inez-Henares, S. Massalkhi, B. Tercero, P. de Vicente, S. Mart'in, David San Andr'es, M. Requena-Torres, J. Alonso
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引用次数: 1

摘要

我们报道了在星际介质(ISM)中首次检测到C2H5O2N异构体:syn-glycolamide (NH2C(O)CH2OH)。利用Yebes 40 m和IRAM 30 m望远镜对G+ 0.993 - 0.027分子云进行的超深光谱调查,其精确的灵敏度达到了mk以下的水平,使我们能够明确地识别出该物种的多次跃迁。我们得到柱密度为(7.4±0.7)× 1012 cm−2,这意味着相对于H2的分子丰度为5.5 × 10−11。其他C2H5O2N异构体,包括乙醇酰胺的高能反构象和甘氨酸的两个构象,均未检测到。甘氨酸丰度的上限表明,这种氨基酸在ISM中的丰度肯定低于它的异构体乙醇酰胺。C2H5O2N异构体的丰度不能用热力学平衡来解释;因此,需要调用化学动力学。虽然甘氨酸的低丰度可能并不令人惊讶,但基于ISM中酸的相对丰度低于其他化合物(如醇、醛或胺),有几种化学途径有利于其异构体乙醇酰胺的形成。它可以通过粉尘颗粒表面的自由基-自由基反应形成。这些自由基的丰度在受宇宙射线诱导的强紫外线场影响的环境中可以显著提高,如预期的G+ 0.693-0.027。因此,正如最近对这个分子云进行的几次分子检测所显示的那样,它是发现化学复杂性不断增加的碳、氧和氮新物种的最佳目标。
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First Glycine Isomer Detected in the Interstellar Medium: Glycolamide (NH2C(O)CH2OH)
We report the first detection in the interstellar medium (ISM) of a C2H5O2N isomer: syn-glycolamide (NH2C(O)CH2OH). The exquisite sensitivity at sub-mK levels of an ultradeep spectral survey carried out with the Yebes 40 m and IRAM 30 m telescopes toward the G+0.693–0.027 molecular cloud has allowed us to unambiguously identify multiple transitions of this species. We derived a column density of (7.4 ± 0.7) × 1012 cm−2, which implies a molecular abundance with respect to H2 of 5.5 × 10−11. The other C2H5O2N isomers, including the higher-energy anti conformer of glycolamide and two conformers of glycine, were not detected. The upper limit derived for the abundance of glycine indicates that this amino acid is surely less abundant than its isomer glycolamide in the ISM. The abundances of the C2H5O2N isomers cannot be explained in terms of thermodynamic equilibrium; thus, chemical kinetics need to be invoked. While the low abundance of glycine might not be surprising, based on the relative low abundances of acids in the ISM compared to other compounds (e.g., alcohols, aldehydes, or amines), several chemical pathways can favor the formation of its isomer glycolamide. It can be formed through radical–radical reactions on the surface of dust grains. The abundances of these radicals can be significantly boosted in an environment affected by a strong ultraviolet field induced by cosmic rays, such as that expected in G+0.693–0.027. Therefore, as shown by several recent molecular detections toward this molecular cloud, it stands out as the best target to discover new species with carbon, oxygen, and nitrogen with increasing chemical complexity.
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