Survival is not Enough: Dust Sputtering, Growth, and H 2 Formation in Galactic Winds
Chia-Yu Hu, Max Gronke
astro-ph.GA
Submitted: 2026-07-06
Comments: Submitted. Comments welcome. 22 pages, 16 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: A substantial amount of dust is found in galactic halos extending far beyond the disks, the origin of which remains an open question.
Terminology
Abstract
A substantial amount of dust is found in galactic halos extending far beyond the disks, the origin of which remains an open question. Closely linked and equally puzzling is the detection of molecular gas in high-velocity galactic winds. To address this, we present the first cloud-crushing simulations that self-consistently include non-equilibrium cooling and chemistry with dust growth and sputtering. We find that surviving clouds naturally develop a two-phase structure, with a cold (about 30 K), dense core embedded in a warm (about 10 4 K), diffuse envelope. However, the presence of a cold phase does not always lead to molecular winds. While dust initially in the cloud largely survives in 10 6 K winds, it is severely depleted by sputtering in hotter winds (10 7 K). Importantly, without dust growth, the dust-to-gas ratio (DGR) of the cloud declines rapidly, suppressing the formation of molecular hydrogen (H 2) and keeping the entrained cloud atomic, even in cases where the majority of the initial dust survives. Nonthermal sputtering plays a subdominant role in all cases. The entrained clouds develop high molecular fractions only when dust growth is enabled, provided the cloud densities are sufficiently high (10 - 30 times the critical density for cloud survival). Our results suggest that "in situ" dust growth is essential to explain both the observed abundance of halo dust and the molecular gas in galactic winds.
Sources
- Shock-multicloud interactions in galactic outflows -- II. Radiative fractal clouds and cold gas thermodynamics
- The Launching of Cold Clouds by Galaxy Outflows V: The Role of Anisotropic Thermal Conduction
- Survival of molecular gas in a stellar feedback-driven outflow witnessed with the MUSE TIMER project and ALMA
- JWST Observations of Starbursts: PAHs Closely Trace the Cool Phase of M82's Galactic Wind
- Dust Evolution in Simulated Multiphase Galactic Outflows
- Universal Structure of Turbulent Radiative Mixing Layers
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