Literature DB >> 10990918

Collisional dark matter and the origin of massive black holes

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Abstract

If the cosmological dark matter is primarily in the form of an elementary particle which has mass m(p) and cross section for self-interaction sigma, then seed black holes (formed in stellar collapse) will grow in a Hubble time t(H) due to accretion of the dark matter to a mass, M(H) = sqrt[IC(9)(A)t(H)(sigma/G(3)m(p)c(2))] = 7.1x10(6)(sigma/m(p))(1/2)V(9/2)(c)t(1/2)(H,15) solar masses. Here I is a numerical factor, C(A) the galactic velocity dispersion, and V(c) its rotation velocity. For the same values of ( sigma/m(p)) that are attractive with respect to other cosmological desiderata, this produces massive black holes in the (10(6)-10(9))M( middle dot in circle) range observed, with the same dependence on a V(c) seen, and with a time dependence consistent with observations. Other astrophysical consequences of collisional dark matter and tests of the idea are noted.

Year:  2000        PMID: 10990918     DOI: 10.1103/PhysRevLett.84.5258

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  2 in total

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Authors:  Pau Amaro-Seoane
Journal:  Living Rev Relativ       Date:  2018-05-15       Impact factor: 40.429

2.  Probing the nature of black holes: Deep in the mHz gravitational-wave sky.

Authors:  Vishal Baibhav; Leor Barack; Emanuele Berti; Béatrice Bonga; Richard Brito; Vitor Cardoso; Geoffrey Compère; Saurya Das; Daniela Doneva; Juan Garcia-Bellido; Lavinia Heisenberg; Scott A Hughes; Maximiliano Isi; Karan Jani; Chris Kavanagh; Georgios Lukes-Gerakopoulos; Guido Mueller; Paolo Pani; Antoine Petiteau; Surjeet Rajendran; Thomas P Sotiriou; Nikolaos Stergioulas; Alasdair Taylor; Elias Vagenas; Maarten van de Meent; Niels Warburton; Barry Wardell; Vojtěch Witzany; Aaron Zimmerman
Journal:  Exp Astron (Dordr)       Date:  2021-09-03       Impact factor: 2.012

  2 in total

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