ArXiv TLDR

The GECKOS survey: Resolving the molecular and ionised gas in the galactic outflow of ESO~484-036

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2604.14546

J. Hernández-Yévenes, D. B. Fisher, B. Mazzilli Ciraulo, R. L. Davies, M. Martig + 18 more

astro-ph.GA

TLDR

Study of galactic outflow in ESO~484-036 reveals molecular gas dominates, showing current simulations underpredict cold gas production in starbursts.

Key contributions

  • Conducted a spatially resolved multiphase study of the galactic outflow in ESO~484-036.
  • Found molecular gas dominates the outflow near the disc, extending up to 2.5 kpc.
  • Measured high molecular mass outflow rates and mass loading factors, suggesting regulation.
  • Revealed a 1-dex shift in mass-loading relations when molecular gas is included.

Why it matters

This paper highlights a significant discrepancy between observed molecular gas outflows and cosmological simulations. It suggests current models strongly underpredict cold gas production and the role of short-range recycling flows in starburst galaxies. This has major implications for understanding galaxy evolution and gas regulation.

Original Abstract

We present a spatially resolved, multiphase study of the outflow in the edge-on starburst galaxy ESO~484-036 from the GECKOS survey, combining VLT/MUSE H$α$ and ALMA CO(1$-$0) observations to analyse the atomic ionised and cold molecular gas. Both show extraplanar emission consistent with a conical outflow. Ionised gas is enclosed by molecular gas, which is detected up to 2.5 kpc from the disc. Molecular gas dominates near the disc, except at the nuclear base, while ionised gas extends beyond 3 kpc. The deprojected outflow velocities are $\lesssim400\ \rm km\ s^{-1}$ in both phases and are consistent with ballistic motion, with some gas possibly falling back onto the disc. We find that the mass outflow rates are in the range of $\dot M_{\rm ion}\sim1-5\ \rm M_\odot\ \rm yr^{-1}$ and $\dot M_{\rm mol}\sim13-54\ \rm M_\odot\ \rm yr^{-1}$, giving mass loading factors of $η_{M\rm, ion}\sim 0.1-0.6$ and $η_{M\rm, mol}\sim 1.5-6.2$. These ranges reflect velocity and geometric uncertainties. Despite the short depletion time ($τ_{\rm dep} = 16-48\rm\ Myr$), the outflow may regulate rather than permanently quench the gas reservoir. Energy loading ($η_E\leq0.16$) and momentum loading ($η_p\lesssim1$) support a purely starburst-driven outflow. Comparing ESO~484-036 with a literature sample, we find a systematic 1~dex shift in mass-loading relations when molecular gas is included. This produces a $\sim3.5$~dex discrepancy with cosmological simulations in $η_{M\rm, mol}/η_{M\rm, ion}$, implying that current models strongly underpredict cold gas production and the role of short-range recycling flows in starburst galaxies.

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