JWST detects PAH emission from warm dust extending to about 35 kpc in the Makani galaxy's wind, indicating starburst-ejected dust survives into the circumgalactic medium but is progressively eroded.
Deep Ultraviolet, Emission-Line Imaging of the Makani Galactic Wind
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
The OVI 1032, 1038 A line is a key probe of cooling gas in the circumgalactic medium (CGM) of galaxies, but has been observed to date primarily in absorption along single sightlines. We present deep HST ACS-SBC observations of the compact, massive starburst Makani. Makani hosts a 100 kpc, [OII]-emitting galactic wind driven by two episodes of star formation over 400 Myr. We detect OVI and Ly$\alpha$ emission across the [OII] nebula with similar morphology and extent, out to r ~ 50 kpc. Using differential narrow-band imaging, we separate Ly$\alpha$ and OVI and show that the OVI emission is comparable in brightness to [OII], with $L_{OVI} = 4\times10^{42}$ erg/s. The similar hourglass morphology and size of [OII] and OVI implicate radiative cooling at $T = 10^{5.5}$ K in a hot-cold interface. This may occur as the $T > 10^7$ K CGM -- or the hot fluid driving the wind -- exchanges mass with the $T \approx 10^4$ K clouds entrained in (or formed by) the wind. The optical/UV line ratios may be consistent with shock ionization, though uncertain attenuation and Ly$\alpha$ radiative transfer complicate the interpretation. The detection of OVI in Makani lies at the bleeding edge of the UV imaging capabilities of HST, and provides a benchmark for future emission-line imaging of the CGM with a wide-area UV telescope.
fields
astro-ph.GA 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
-
JWST Discovery of Warm Dust in the Circumgalactic Medium of the Makani Galaxy
JWST detects PAH emission from warm dust extending to about 35 kpc in the Makani galaxy's wind, indicating starburst-ejected dust survives into the circumgalactic medium but is progressively eroded.