The Multi-phase Biconical Outflow in the local IR-Luminous Merger IRASF01364-1042

Song, Y., V., U, Kader, J., Bianchin, M., Agostino, J., Barcos-Muñoz, L., Torres-Albà, N., Medling, A., Ricci, C., Armus, L., Lai, T., Ghodsi, L., Evans, A., Inami, H., Stierwalt, S., Bohn, T., Emig, K. L., Buiten, V., Donnelly, G., Treister, E., Jimenez-Gallardo, A., Böker, T., Kakkad, D., Linden, S., van der Werf, P., Charmandaris, V., Remigio, R., Lenkic, L., Finlez, C., Sanchez-García, M., Lofaro, C., Saravia, A., Yoon, I., Privon, G. C., Gao, T., Aziz, H., McGurk, R., Díaz-Santos, T., Kunneriath, D. and Sanders, David B. (2026) The Multi-phase Biconical Outflow in the local IR-Luminous Merger IRASF01364-1042. Astronomy & Astrophysics, 712: A59. ISSN 0004-6361
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We investigate the spatially-resolved ISM properties of the local ($z = 0.048$), IR-luminous ($L_{\rm IR} = 10^{11.87}$\,L$_\odot$), late-stage galaxy merger IRAS F01364-1042, combining multi-wavelength IFU observations from \textit{JWST/MIRI-MRS}, ALMA and Keck/KCWI. Using these datasets, we construct emission line maps of several key tracers of the ionized (e.g., [Ne\,II]\,12.8$μ$m, [O\,III]$\lambda5007$), warm molecular (e.g., \ce{H2}\,0-0\,S(3)), and cold molecular gas (e.g., CO (J$=2-1$)), and perform detailed decomposition of spectra extracted in resolved regions across the areas of emission. We confirm the presence of a multi-phase galactic biconical outflow along the minor axis of a highly inclined rotating disk. The inferred outflow velocities are $\sim\,$500 - 600\,km\,s$^{-1}$ $\sim\,$350\,km\,s$^{-1}$, and $\sim\,$200 - 300\,km\,s$^{-1}$, in the ionized, warm and cold molecular phase, respectively, with corresponding mass outflow rates of $\sim 0.3 - 2.3$, $\sim 31$, and $\sim 38 - 240$\,M$_\odot\,$yr$^{-1}$. The cold molecular phase dominates both the total mass outflow rate and the associated kinetic energy ($\sim\,2 - 8 \times 10^{42}$\,erg\,s$^{-1}$). We confirm, for the first time, a dust-obscured AGN in IRAS\,F01364-1042, via detection of the [Ne\,V]\,14.3$μ$m line. The low inferred AGN bolometric luminosity ($1.2 - 1.8 \times 10^{43}$\,erg\,s$^{-1}$) suggests that the nuclear starburst alone, with a star formation rate of $\sim 40 - 60$\,M$_\odot$\,yr$^{-1}$, can account for the energy required to drive the outflow, though a more active AGN phase in the recent past may have also played a role. Our work showcases the necessity of multi-wavelength observations for interpreting the gas dynamics in merger-driven dusty starbursts, and the capability of \textit{JWST/MIRI-MRS} to uncover obscured, low-luminosity AGN that may be common in these systems.


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