Observational Constraints on Cool Gas Clouds in M82's Starburst-Driven Outflow
arXiv:2502.06934 · doi:10.3847/1538-4357/adec75
Abstract
Star formation feedback can drive large-scale, multi-phase galactic outflows. The dynamical and thermodynamical interaction between the hot and cooler phases is a prime focus of both observational and theoretical work. Here, we analyze H-emitting structures in the extraplanar wind of the nearby starburst M82. We use high-resolution, narrow-band, observations from the Hubble Legacy Archive (Mutchler et al. 2007). Our analysis constrains the morphology, number density, and column density of the structures. We highlight conspicuous arc-like structures that differ significantly from the linear cometary clouds that emerge from galactic wind simulations and discuss their possible origins, such as bow shocks or instabilities driven by cosmic rays. The most prominent structures range in size from pc. Using the H brightness and assumptions about the depth of the emitting structures, we estimate number densities of cm assuming a unity volume filling factor, which are lower than previous constraints from spectroscopic nebular line studies. The derived column densities, cm, along the path of the outflow are above theoretical thresholds for cool cloud survival in a hot supersonic background, but small enough that the structures could be accelerated by the hot wind momentum. Using diffuse X-ray emission maps from , we also find that even on small ( pc) scales, the H "leads" the X-rays, a behavior long noted in the literature on kiloparsec scales, and one we observe in the brightness profiles of the structures we analyze. This behavior, along with previous observational studies of ionization in the wind, may signal that shock ionization is responsible for the H emission we observe.
22 pages, 9 Figures; submitted to ApJ (10 February 2025); Accepted by ApJ (3 July 2025)
References in corpus (22)
- scikit-image: Image processing in Python
- The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package
- The Circumgalactic Medium
- Structural Analysis of Molecular Clouds: Dendrograms
- The Launching of Cold Clouds by Galaxy Outflows I: Hydrodynamic Interactions with Radiative Cooling
- Extended Mid-Infrared Aromatic Feature Emission in M 82
- FellWalker - a Clump Identification Algorithm
- Survival and mass growth of cold gas in a turbulent, multiphase medium
- Hubble Space Telescope ACS mosaic of the prototypical starburst galaxy M82
- HST/STIS spectroscopy of the environment in the starburst core of M82
- The Physics of Galactic Winds Driven by Cosmic Rays II: Isothermal Streaming Solutions
- X-ray Properties of NGC 253's Starburst-Driven Outflow
- M82 - A radio continuum and polarisation study II. Polarisation and rotation measures
- CR Driven Multi-phase Gas Formed via Thermal Instability
- NOEMA High Fidelity Imaging of the Molecular Gas in and around M82
- A giant shell of ionized gas discovered near M82 with the Dragonfly Spectral Line Mapper pathfinder
- Why are thermally- and cosmic ray-driven galactic winds fundamentally different?
- A Nascent Tidal Dwarf Galaxy Forming within the Northern HI Streamer of M82
- Cosmic-Ray Driven Galactic Winds from the Warm Interstellar Medium
- 3D morphology of a random field from its 2D cross-section
- Hot Gas Outflow Properties of the Starburst Galaxy NGC 4945
- Physical Conditions of the Ionized Superwind in NGC 253 with VLT/MUSE
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- JWST Observations of Starbursts: PAHs Closely Trace the Cool Phase of M82's Galactic Wind
- Dust Evolution in Simulated Multiphase Galactic Outflows
- JWST Observations of Starbursts: Dust Processing in the M82 Superwind
- Stars Born in the Wind: M82's Outflow and Halo Star Formation
- Modeling Emission-Line Surface Brightness in a Multiphase Galactic Wind: An O VI Case Study