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September 10, 2025The Astrophysical Journal7 citationsOpen Access

Timescales of Polycyclic Aromatic Hydrocarbon and Dust Continuum Emission from Gas Clouds Compared to Molecular Gas Cloud Lifetimes in PHANGS-JWST Galaxies

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JKJenny J. KimMCMélanie ChevanceLRLise Ramambason

Key Points

  • The mid-infrared emitting timescale for gas clouds ranges from 10–30 million years, highlighting the longevity of dust emissions.
  • Mid-infrared emission persists 3–7 million years during the stellar feedback phase, overlapping significantly with detected star formation.
  • The similarity between the mid-infrared emissions and molecular cloud lifetimes suggests stable CO formation under certain conditions.
  • Galaxies with defined H ii regions show longer mid-infrared emission timescales, implying interactions with the surrounding interstellar medium.

Abstract

Abstract Recent JWST mid-infrared (mid-IR) images, tracing polycyclic aromatic hydrocarbons (PAHs) and dust continuum emission, provide detailed views of the interstellar medium (ISM) in nearby galaxies. Leveraging PHANGS-JWST Cycle 1 and PHANGS-MUSE data, we measure the PAH and dust continuum emission lifetimes of gas clouds across 17 nearby star-forming galaxies by analyzing the relative spatial distributions of mid-IR (7.7–11.3 μ m) and H α emission at various scales. We find that the mid-IR emitting timescale of gas clouds in galactic disks (excluding centers) ranges from 10–30 Myr. After star formation is detected in H α , mid-IR emission persists for 3–7 Myr during the stellar feedback phase, covering 70%–80% of the H α emission. This significant overlap is due to intense radiation from star-forming regions, illuminating the surrounding PAHs and dust grains. In most galaxies, the mid-IR time-scale closely matches the molecular cloud lifetime measured with CO. Although mid-IR emission is complex, as influenced by ISM distribution, radiation, and abundances of dust and PAHs, the similarity between the two timescales suggests that once gas clouds form with compact mid-IR emission, they quickly provide sufficient shielding for stable CO formation. This is likely due to our focus on molecular gas-rich regions of galaxies with near-solar metallicity. Finally, we find that the mid-IR emitting timescale is longer in galaxies with well-defined H ii regions and less structured backgrounds, allowing photons to more efficiently heat the ambient ISM surrounding the H ii regions, rather than contributing to diffuse emission. This suggests that the shape of the ISM also influences mid-IR emission.

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Cite This Study

Kim et al. (2025) studied this question.

synapsesocial.com/papers/68c1ae7f54b1d3bfb60e6e3dhttps://doi.org/10.3847/1538-4357/ade443
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1PHANGS-JWST: The largest extragalactic molecular cloud catalog traced by polycyclic aromatic hydrocarbon emission2025
  2. 2A new census of dust and polycyclic aromatic hydrocarbons at z=0.7-2 with JWST MIRI2024 · 13 citations
  3. 3The Fraction of Dust Mass in the Form of Polycyclic Aromatic Hydrocarbons on 10–50 pc Scales in Nearby Galaxies2024 · 10 citations
  4. 4Polycyclic Aromatic Hydrocarbon Emission in Galaxies as seen with JWST2024
  5. 5JWST Discovery of Warm Dust in the Circumgalactic Medium of the Makani Galaxy2025