Most Stars (and Planets?) Are Born in Intense Radiation Fields
arXiv:2003.03390 · doi:10.1093/mnrasl/slaa050
Abstract
Protostars and young stars are strongly spatially "clustered" or "correlated" within their natal giant molecular clouds (GMCs). We demonstrate that such clustering leads to the conclusion that the incident bolometric radiative flux upon a random young star/disc is enhanced (relative to volume-averaged fluxes) by a factor which increases with the total stellar mass of the complex. Because the Galactic cloud mass function is top-heavy, the typical star in our Galaxy experienced a much stronger radiative environment than those forming in well-observed nearby (but relatively small) clouds, exceeding fluxes in the Orion Nebular Cluster by factors of 30. Heating of the circumstellar disc around a median young star is dominated by this external radiation beyond AU. And if discs are not well-shielded by ambient dust, external UV irradiation can dominate over the host star down to sub-AU scales. Another consequence of stellar clustering is an extremely broad Galaxy-wide distribution of incident flux (spanning decades), with half the Galactic star formation in a substantial "tail" towards even more intense background radiation. We also show that the strength of external irradiation is amplified super-linearly in high-density environments such as the Galactic centre, starbursts, or high-redshift galaxies.
MNRAS Letters in press
References in corpus (11)
- The Resolved Properties of Extragalactic Giant Molecular Clouds
- Physical properties of molecular clouds for the entire Milky Way disk
- Evidence of fast pebble growth near condensation fronts in the HL Tau protoplanetary disk
- The Mass Distribution and Lifetime of Prestellar Cores in Perseus, Serpens, and Ophiuchus
- Observational Evidence of Dynamic Star Formation Rate in Milky Way Giant Molecular Clouds
- UV Radiation Fields Produced by Young Embedded Star Clusters
- Spatial Distributions of Young Stars
- The Spatial Relation between Young Star Clusters and Molecular Clouds in M 51 with LEGUS
- Disruption of giant molecular clouds and formation of bound star clusters under the influence of momentum stellar feedback
- Probing interstellar turbulence in cirrus with deep optical imaging: no sign of energy dissipation at 0.01 pc scale
- NGC 346 in the Small Magellanic Cloud. III. Recent Star Formation and Stellar Clustering Properties in the Bright HII Region N 66
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- Illuminating a tadpole's metamorphosis III: quantifying past and present environmental impact
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