Herschel/PACS spectroscopy of NGC 4418 and Arp 220: H2O, H2^{18}O, OH, ^{18}OH, O I, HCN and NH3
E. Gonz\'alez-Alfonso, J. Fischer, J. Graci\'a-Carpio, E. Sturm, S., Hailey-Dunsheath, D. Lutz, A. Poglitsch, A. Contursi, H. Feuchtgruber, S., Veilleux, H. W. W. Spoon, A. Verma, N. Christopher, R. Davies, A. Sternberg,, R. Genzel, L. Tacconi

TL;DR
This study uses Herschel/PACS spectroscopy to analyze the molecular and chemical properties of NGC 4418 and Arp 220, revealing high excitation, inflow signatures, chemical dichotomies, and potential evolutionary sequences in these luminous infrared galaxies.
Contribution
It provides detailed molecular excitation, chemical composition, and isotope ratio data for NGC 4418 and Arp 220, highlighting differences and evolutionary implications.
Findings
High excitation lines detected in both galaxies.
Evidence of inflow in NGC 4418 and outflow in Arp 220.
Chemical dichotomy with hot core chemistry and isotope ratios.
Abstract
Herschel/PACS spectroscopy of the luminous infrared galaxies NGC4418 and Arp220 reveals high excitation in H2O, OH, HCN, and NH3. In NGC4418, absorption lines were detected with E_low>800 K (H2O), 600 K (OH), 1075 K (HCN), and 600 K (NH3), while in Arp220 the excitation is somewhat lower. While outflow signatures in moderate excitation lines are seen in Arp220 as reported in previous studies, in NGC4418 the lines tracing its outer regions are redshifted relative to the nucleus, suggesting an inflow with Mdot<~12 Msun yr^{-1}. Both galaxies have warm (Tdust>~100 K) nuclear continuum components, together with a more extended component that is much more prominent and massive in Arp220. A chemical dichotomy is found in both sources: on the one hand, the nuclear regions have high H2O abundances, ~10^{-5}, and high HCN/H2O and HCN/NH3 column density ratios of 0.1-0.4 and 2-5, respectively,…
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