The unbearable opaqueness of Arp 220
arXiv:1603.01291 · doi:10.1051/0004-6361/201528064
Abstract
We explore the potential of imaging vibrationally excited molecular emission at high angular resolution to better understand the morphology and physical structure of the dense gas in Arp~220 and to gain insight into the nature of the nuclear powering sources. Vibrationally excited emission of HCN is detected in both nuclei with a very high ratio relative to the total , higher than in any other observed galaxy and well above what is observed in Galactic hot cores. HCN is observed to be marginally resolved in ~pc regions inside the dusty ~pc sized nuclear cores. Its emission is centered on our derived individual nuclear velocities based on HCO emission ( and ~\kms, for the western and eastern nucleus, respectively). With virial masses within ~pc based on the HCN~ line widths, we estimate gas surface densities (gas fraction ) of (WN) and (EN). The flux density ratio could be consistent with optically thick emission, which would further constrain the size of the emitting region to ~pc (EN) and ~pc (WN). The absorption systems that may hide up to of the HCN and HCO emission are found at velocities of ~\kms~(EN) and , , and ~\kms (WN) relative to velocities of the nuclei. Blueshifted absorptions are the evidence of outflowing motions from both nuclei. The bright vibrational emission implies the existence of a hot dust region radiatively pumping these transitions. We find evidence of a strong temperature gradient that would be responsible for both the HCN pumping and the absorbed profiles from the vibrational ground state as a result of both continuum and self-absorption by cooler foreground gas.
14 pages accepted for publication in A&A