论文标题

NGC 1068的过流核磁盘中AGN反馈的化学足迹

The chemical footprint of AGN feedback in the outflowing circumnuclear disk of NGC 1068

论文作者

Huang, K. -Y., Viti, S., Holdship, J., García-Burillo, S., Kohno, K., Taniguchi, A., Martín, S., Aladro, R., Fuente, A., Sánchez-García, M.

论文摘要

在附近的(d = 14 MPC)Agn-Starburst复合星系NGC 1068中,已经发现,环核盘中的分子气(CND)中的分子气正在流出,这是正在进行的AGN反馈的表现。流出的气体具有大量速度,在CND的不同位置可能会驱动不同的冲击化学特征。我们使用两个冲击示踪剂SIO和HNCO进行了多行分子研究,目的是确定这两个物种所追踪的气体特性,并探索重建CND中的冲击历史的可能性。以高分辨率$ 0''。5-0''。8$与Atacama大型毫米/亚毫米阵列(ALMA)成像,以高分辨率$ 0'。5-0'。8 $成像。我们进行了LTE和非LTE辐射转移分析,并与贝叶斯推理过程相连,以表征气体特性,例如分子气体密度和气体温度。我们发现了SIO和HNCO之间化学分化的明确证据,SIO/HNCO比率从CND东部的大于1到西侧的一个。与贝叶斯推断相结合的非LTE辐射转移分析证实,SIO追踪的气体具有与HNCO所追踪的密度不同(可能是温度)。我们发现,Sio追踪受快速冲击影响的气体,而HNCO追踪的气体要么只是受慢速冲击的影响,要么根本不震惊。在我们的观察结果中揭示了SIO和HNCO之间的明显区别,并且对这两种物种所追踪的气体特性的进一步分析证实了先前化学模型的结果。

In the nearby (D=14 Mpc) AGN-starburst composite galaxy NGC 1068, it has been found that the molecular gas in the Circum-nuclear Disk (CND) is outflowing, which is a manifestation of ongoing AGN feedback. The outflowing gas has a large spread of velocities, which likely drive different shock chemistry signatures at different locations in the CND. We perform a multi-line molecular study using two shock tracers, SiO and HNCO, with the aim to determine the gas properties traced by these two species, and explore the possibility of reconstructing the shock history in the CND. Five SiO transitions and three HNCO transitions were imaged at high resolution $0''.5-0''.8$ with the Atacama Large Millimeter/submillimeter Array (ALMA). We performed both LTE and non-LTE radiative transfer analysis coupled with Bayesian inference process in order to characterize the gas properties, such as molecular gas density and gas temperature. We found clear evidence of chemical differentiation between SiO and HNCO, with the SiO/HNCO ratio ranging from greater than one on the east of CND to lower than one on the west side. The non-LTE radiative transfer analysis coupled with Bayesian inference confirms that the gas traced by SiO has different densities - and possibly temperatures - than that traced by HNCO. We find that SiO traces gas affected by fast shocks while the gas traced by HNCO is either just affected by slow shocks or not shocked at all. A distinct differentiation between SiO and HNCO has been revealed in our observations and the further analysis of the gas properties traced by both species, which confirms the results from previous chemical modelings.

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