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What powers the starburst activity of NGC 1068? Star-driven gravitational instabilities caught in the act

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arxiv 1602.03049 v2 pith:X4BXFLG4 submitted 2016-02-09 astro-ph.GA astro-ph.COphysics.flu-dynphysics.plasm-ph

classification astro-ph.GAastro-ph.COphysics.flu-dynphysics.plasm-ph
keywords gravitationalinstabilitiesinstabilitymolecularstarburstactivitydensitydisc
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We explore the role that gravitational instability plays in NGC 1068, a nearby Seyfert galaxy that exhibits unusually vigorous starburst activity. For this purpose, we use the Romeo-Falstad disc instability diagnostics and data from BIMA SONG, SDSS and SAURON. Our analysis illustrates that NGC 1068 is a gravitationally unstable "monster". Its starburst disc is subject to unusually powerful instabilities. Several processes, including AGN/stellar feedback, try to quench such instabilities from inside out by depressing the surface density of molecular gas across the central kpc, but they do not succeed. Gravitational instability "wins" because it is driven by the stars via their much higher surface density. In this process, stars and molecular gas are strongly coupled, and it is such a coupling that ultimately triggers local gravitational collapse/fragmentation in the molecular gas.

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  1. Axion-like particle limits from multi-messenger sources

    hep-ph 2025-06 conditional novelty 5.0 of 10

    A jet-plus-corona model of NGC 1068, constrained by IceCube neutrinos, gives ALP-photon coupling limits g_aγ ≲ 7×10^-11 GeV^-1 for masses below 10^-9 eV, weaker than current bounds but offering a new multi-messenger route.

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