Gravitational Atom Spectroscopy

Fuente: arXiv
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Autori principali: Della Rocca, Matteo, Spieksma, Thomas F. M., Duque, Francisco, Gualtieri, Leonardo, Cardoso, Vitor
Natura: Preprint
Pubblicazione: 2025
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author Della Rocca, Matteo
Spieksma, Thomas F. M.
Duque, Francisco
Gualtieri, Leonardo
Cardoso, Vitor
author_facet Della Rocca, Matteo
Spieksma, Thomas F. M.
Duque, Francisco
Gualtieri, Leonardo
Cardoso, Vitor
contents Black holes in our Universe are rarely truly isolated, being instead embedded in astrophysical environments such as plasma or dark matter. A particularly intriguing possibility is that light scalar fields form bound states around black holes, producing extended ''clouds'' known as gravitational atoms. When these clouds become sufficiently compact, the spacetime can no longer be described by a vacuum solution of General Relativity. In this regime, one can construct quasi-stationary, spherically symmetric, self-gravitating scalar gravitational-atom configurations. Here, we explore an observationally relevant aspect of these systems by computing their fundamental quasi-normal mode. We present a fully relativistic calculation of the axial modes in both the time and frequency domains, finding frequency shifts relative to the vacuum case that depends mostly on the compactness of the gravitational atom. For sufficiently compact configurations, these shifts may be detectable by current or future gravitational wave detectors.
format Preprint
id arxiv_https___arxiv_org_abs_2511_13848
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Gravitational Atom Spectroscopy
Della Rocca, Matteo
Spieksma, Thomas F. M.
Duque, Francisco
Gualtieri, Leonardo
Cardoso, Vitor
General Relativity and Quantum Cosmology
High Energy Physics - Phenomenology
High Energy Physics - Theory
Black holes in our Universe are rarely truly isolated, being instead embedded in astrophysical environments such as plasma or dark matter. A particularly intriguing possibility is that light scalar fields form bound states around black holes, producing extended ''clouds'' known as gravitational atoms. When these clouds become sufficiently compact, the spacetime can no longer be described by a vacuum solution of General Relativity. In this regime, one can construct quasi-stationary, spherically symmetric, self-gravitating scalar gravitational-atom configurations. Here, we explore an observationally relevant aspect of these systems by computing their fundamental quasi-normal mode. We present a fully relativistic calculation of the axial modes in both the time and frequency domains, finding frequency shifts relative to the vacuum case that depends mostly on the compactness of the gravitational atom. For sufficiently compact configurations, these shifts may be detectable by current or future gravitational wave detectors.
title Gravitational Atom Spectroscopy
topic General Relativity and Quantum Cosmology
High Energy Physics - Phenomenology
High Energy Physics - Theory
url https://arxiv.org/abs/2511.13848