First statistical constraints on galactic scale outflows properties traced by their extended Mg II emission with MUSE

Fuente: arXiv
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Autori principali: Pessa, Ismael, Wisotzki, Lutz, Urrutia, Tanya, Bouché, Nicolas F., Leclercq, Floriane, Augustin, Ramona, Guo, Yucheng, Kozlova, Daria, Kusakabe, Haruka, Pharo, John
Natura: Preprint
Pubblicazione: 2026
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author Pessa, Ismael
Wisotzki, Lutz
Urrutia, Tanya
Bouché, Nicolas F.
Leclercq, Floriane
Augustin, Ramona
Guo, Yucheng
Kozlova, Daria
Kusakabe, Haruka
Pharo, John
author_facet Pessa, Ismael
Wisotzki, Lutz
Urrutia, Tanya
Bouché, Nicolas F.
Leclercq, Floriane
Augustin, Ramona
Guo, Yucheng
Kozlova, Daria
Kusakabe, Haruka
Pharo, John
contents Galaxies evolve within vast gaseous halos that fuel star formation and carry signatures of feedback-driven outflows. Deep integral field data have enabled the study of MgII halos, which trace galaxy-scale outflows in emission, but their faintness has limited studies to single-object analyses. Here, we present the first statistical study of MgII-emitting halos using deep MUSE observations of 47 star-forming galaxies at $0.7<z<2.0$. Building on our previous work, where we developed and applied an outflow modeling framework for a single MgII halo, we now extend this approach to a larger sample, enabling robust population-level insights on the properties of circumgalactic outflows traced by their extended MgII emission. We detect extended emission out to tens of kiloparsecs and model the outflows as an ensemble of radially accelerating shells. Galaxies with MgII outflows tend to have higher SFRs, sSFRs, and younger stellar populations, consistent with star-formation-driven winds. The observations are consistent with winds that accelerate linearly with radius, from launching velocities of ~60 km/s up to maximum velocities that correlate with stellar mass and reach ~490 km/s. Their inner regions are highly opaque, and we find a tentative trend between stellar mass and central optical depth. The opening angle of the outflow shows some dependency on the host-galaxy stellar mass, with less massive galaxies showing primarily wide opening angles, and more massive galaxies showing a broader range of values, with both wide and narrow opening angles. The distribution of the spatial extent of MgII halos exhibits a clear peak at half-light radius (HLR) of ~5 kpc, with an extended tail of larger HLR values, up to ~20 kpc. Compact halo sizes (HLR $< 8$ kpc) correlate with stellar mass, but extended halos do not, which could suggest a difference in the powering mechanism between compact and extended halos.
format Preprint
id arxiv_https___arxiv_org_abs_2602_11280
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle First statistical constraints on galactic scale outflows properties traced by their extended Mg II emission with MUSE
Pessa, Ismael
Wisotzki, Lutz
Urrutia, Tanya
Bouché, Nicolas F.
Leclercq, Floriane
Augustin, Ramona
Guo, Yucheng
Kozlova, Daria
Kusakabe, Haruka
Pharo, John
Astrophysics of Galaxies
Galaxies evolve within vast gaseous halos that fuel star formation and carry signatures of feedback-driven outflows. Deep integral field data have enabled the study of MgII halos, which trace galaxy-scale outflows in emission, but their faintness has limited studies to single-object analyses. Here, we present the first statistical study of MgII-emitting halos using deep MUSE observations of 47 star-forming galaxies at $0.7<z<2.0$. Building on our previous work, where we developed and applied an outflow modeling framework for a single MgII halo, we now extend this approach to a larger sample, enabling robust population-level insights on the properties of circumgalactic outflows traced by their extended MgII emission. We detect extended emission out to tens of kiloparsecs and model the outflows as an ensemble of radially accelerating shells. Galaxies with MgII outflows tend to have higher SFRs, sSFRs, and younger stellar populations, consistent with star-formation-driven winds. The observations are consistent with winds that accelerate linearly with radius, from launching velocities of ~60 km/s up to maximum velocities that correlate with stellar mass and reach ~490 km/s. Their inner regions are highly opaque, and we find a tentative trend between stellar mass and central optical depth. The opening angle of the outflow shows some dependency on the host-galaxy stellar mass, with less massive galaxies showing primarily wide opening angles, and more massive galaxies showing a broader range of values, with both wide and narrow opening angles. The distribution of the spatial extent of MgII halos exhibits a clear peak at half-light radius (HLR) of ~5 kpc, with an extended tail of larger HLR values, up to ~20 kpc. Compact halo sizes (HLR $< 8$ kpc) correlate with stellar mass, but extended halos do not, which could suggest a difference in the powering mechanism between compact and extended halos.
title First statistical constraints on galactic scale outflows properties traced by their extended Mg II emission with MUSE
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2602.11280