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Quasistationary solutions of self-gravitating scalar fields around collapsing stars

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arxiv 1507.08437 v2 pith:XFLFGHS5 submitted 2015-07-30 gr-qc

classification gr-qc
keywords scalarfieldsaroundstarsblackholesself-gravitatingcollapse
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abstract

Recent work has shown that scalar fields around black holes can form long-lived, quasistationary configurations surviving for cosmological timescales. With this requirement, scalar fields cannot be discarded as viable candidates for dark matter halo models in galaxies around central supermassive black holes (SMBH). One hypothesis for the formation of most SMBHs at high redshift is the gravitational collapse of supermassive stars (SMS) with masses of $\sim10^5 \rm {M_{\odot}}$. Therefore, a constraint for the existence of quasi-bound states of scalar fields is their survival to such dynamic events. To answer this question we present in this paper the results of a series of numerical relativity simulations of gravitationally collapsing, spherically symmetric stars surrounded by self-gravitating scalar fields. We use an ideal fluid equation of state with adiabatic index $\Gamma=4/3$ which is adequate to simulate radiation-dominated isentropic SMSs. Our results confirm the existence of oscillating, long-lived, self-gravitating scalar field configurations around non-rotating black holes after the collapse of the stars.

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  1. Reducing the irreducible: the charged black hole bomb in a moving cavity

    gr-qc 2025-06 conditional novelty 7.0 of 10

    Shrinking a superradiant cavity around a Reissner-Nordström black hole forces charge back into the hole and can reduce its irreducible mass, returning the system to the initial bald configuration.

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