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Pre-supernova feedback mechanisms drive the destruction of molecular clouds in nearby star-forming disc galaxies

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arxiv 2010.13788 v1 pith:OAFJDEPW submitted 2020-10-26 astro-ph.GA

classification astro-ph.GA
keywords feedbackgmcsmechanismsearlyefficiencyformationgalaxiesnearby
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abstract

It is a major open question which physical processes stop the accretion of gas onto giant molecular clouds (GMCs) and limit the efficiency at which gas is converted into stars within these GMCs. While feedback from supernova explosions has been the popular feedback mechanism included in simulations of galaxy formation and evolution, `early' feedback mechanisms such as stellar winds, photoionisation and radiation pressure are expected to play an important role in dispersing the gas after the onset of star formation. These feedback processes typically take place on small scales ($\sim 10-100$ pc) and their effects have therefore been difficult to constrain in environments other than the Milky Way. We apply a novel statistical method to $\sim 1$" resolution maps of CO and Ha emission across a sample of nine nearby disc galaxies, in order to measure the time over which GMCs are dispersed by feedback from young, high-mass stars, as a function of the galactic environment. We find that GMCs are typically dispersed within $\sim$ 3 Myr after the emergence of unembedded high-mass stars, showing no significant trend with galactocentric radius. Comparison with analytical predictions demonstrates that, independently of the environment, early feedback mechanisms (particularly photoionisation and stellar winds) play a crucial role in dispersing GMCs and limiting their star formation efficiency in nearby galaxies. Finally, we show that the efficiency at which the energy injected by these early feedback mechanisms couples with the parent GMC is relatively low (a few tens of per cent), such that the vast majority of momentum and energy emitted by the young stellar populations escapes the parent GMC.

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Cited by 2 Pith papers

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  1. mitigating the overcooling problem with sink-based bursty star formation in a high-z dwarf galaxy

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    Sink-based star formation drives clump-scale bursts that pre-clear gas via radiation, raise SN momentum, cut stellar mass by ~3× and raise LyC escape by ~10× relative to a gravo-thermo-turbulent Schmidt model in a 10^...

  2. The Formation of Globular Clusters

    astro-ph.GA 2025-01 unverdicted novelty 3.0 of 10

    Globular clusters are best understood as the surviving remnants of ordinary, high-pressure star formation in high-redshift galaxies.

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