English

Electromagnetic Signatures of Dark Photon Superradiance

High Energy Physics - Phenomenology 2021-11-19 v2 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

Black hole superradiance is a powerful tool in the search for ultra-light bosons. Constraints on the existence of such particles have been derived from the observation of highly spinning black holes, absence of continuous gravitational-wave signals, and of the associated stochastic background. However, these constraints are only strictly speaking valid in the limit where the boson's interactions can be neglected. In this work we investigate the extent to which the superradiant growth of an ultra-light dark photon can be quenched via scattering processes with ambient electrons. For dark photon masses mγ1017eVm_{\gamma^\prime} \gtrsim 10^{-17}\,{\rm eV}, and for reasonable values of the ambient electron number density, we find superradiance can be quenched prior to extracting a significant fraction of the black-hole spin. For sufficiently large mγm_{\gamma^\prime} and small electron number densities, the in-medium suppression of the kinetic mixing can be efficiently removed, and quenching occurs for mixings χ0O(108)\chi_0 \gtrsim \mathcal{O}(10^{-8}); at low masses, however, in-medium effects strongly inhibit otherwise efficient scattering processes from dissipating energy. Intriguingly, this quenching leads to a time- and energy-oscillating electromagnetic signature, with luminosities potentially extending up to 1057erg/s\sim 10^{57}\,{\rm erg / s}, suggesting that such events should be detectable with existing telescopes. As a byproduct we also show that superradiance cannot be used to constrain a small mass for the Standard Model photon.

Keywords

Cite

@article{arxiv.2102.11280,
  title  = {Electromagnetic Signatures of Dark Photon Superradiance},
  author = {Andrea Caputo and Samuel J. Witte and Diego Blas and Paolo Pani},
  journal= {arXiv preprint arXiv:2102.11280},
  year   = {2021}
}

Comments

v2: Minor changes, matches published version. v1: 14 pages, 3 figures, appendix