论文标题
原子:大规模恒星形成区域的ALMA三毫米观测-VIII。通过使用C $ _2 $ h $ _5 $ CN,CH $ _3 $ OCHO和CH $ _3 $ oh lines来搜索热核
ATOMS: ALMA Three-millimeter Observations of Massive Star-forming regions -- VIII. A search for hot cores by using C$_2$H$_5$CN, CH$_3$OCHO and CH$_3$OH lines
论文作者
论文摘要
以丰富的复杂有机分子线为特征的热核被认为是研究大规模恒星形成的物理和化学环境的理想位点。我们通过使用典型的氮气和含氧复合有机分子(C $ _2 $ H $ _5 $ _5 $ CN,CH $ _3 $ OCHO和CH $ _3 $ OH)来提出搜索热核的搜索。 ALMA观测的角度分辨率和线敏感性分别大于2 Arcsec和10 mjy/beam。总共确定了60个热核,有45个新发现,其中复杂的有机分子具有高气温($> $> $ 100 K)和小源尺寸($ <$ <$ 0.1 PC)。到目前为止,这是观察到具有相似角度分辨率和光谱覆盖率的最大热核样本。观察结果还显示了29个热核的线发射和气体分布中的氮和氧分化。 CH $ _3 $ OH和CH $ _3 $ OCHO的列密度随旋转温度的升高而增加。 CH $ _3 $ OCHO的色谱柱密度与Ch $ _3 $ OH的列密度密切相关。讨论了不同物种生产的途径。基于热核与UC〜H {\ sc II}区域之间的空间位置差异,我们得出结论,在内部加热其他热核的同时,将24个热芯被外部加热。这里提出的观察结果可能有助于建立一个热核模板,以研究大规模的恒星形成和星体化学。
Hot cores characterized by rich lines of complex organic molecules are considered as ideal sites for investigating the physical and chemical environments of massive star formation. We present a search for hot cores by using typical nitrogen- and oxygen-bearing complex organic molecules (C$_2$H$_5$CN, CH$_3$OCHO and CH$_3$OH), based on ALMA Three-millimeter Observations of Massive Star-forming regions (ATOMS). The angular resolutions and line sensitivities of the ALMA observations are better than 2 arcsec and 10 mJy/beam, respectively. A total of 60 hot cores are identified with 45 being newly detected, in which the complex organic molecules have high gas temperatures ($>$ 100 K) and small source sizes ($<$ 0.1 pc). So far this is the largest sample of hot cores observed with similar angular resolution and spectral coverage. The observations have also shown nitrogen and oxygen differentiation in both line emission and gas distribution in 29 hot cores. Column densities of CH$_3$OH and CH$_3$OCHO increase as rotation temperatures rise. The column density of CH$_3$OCHO correlates tightly with that of CH$_3$OH. The pathways for production of different species are discussed. Based on the spatial position difference between hot cores and UC~H{\sc ii} regions, we conclude that 24 hot cores are externally heated while the other hot cores are internally heated. The observations presented here will potentially help establish a hot core template for studying massive star formation and astrochemistry.