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Superradiance in rotating stars and pulsar-timing constraints on dark photons

In the presence of massive bosonic degrees of freedom, rotational superradiance can trigger an instability that spins down black holes. This leads to peculiar gravitational-wave signatures and distribution in the spin-mass plane, which in turn can impose stringent constraints on ultralight fields. H...

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Detalles Bibliográficos
Autores principales: Cardoso, Vitor, Pani, Paolo, Yu, Tien-Tien
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.95.124056
http://cds.cern.ch/record/2263135
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author Cardoso, Vitor
Pani, Paolo
Yu, Tien-Tien
author_facet Cardoso, Vitor
Pani, Paolo
Yu, Tien-Tien
author_sort Cardoso, Vitor
collection CERN
description In the presence of massive bosonic degrees of freedom, rotational superradiance can trigger an instability that spins down black holes. This leads to peculiar gravitational-wave signatures and distribution in the spin-mass plane, which in turn can impose stringent constraints on ultralight fields. Here, we demonstrate that there is an analogous spindown effect for conducting stars. We show that rotating stars amplify low-frequency electromagnetic waves, and that this effect is largest when the time scale for conduction within the star is of the order of a light crossing time. This has interesting consequences for dark photons, as massive dark photons would cause stars to spin down due to superradiant instabilities. The time scale of the spindown depends on the mass of the dark photon, and on the rotation rate, compactness, and conductivity of the star. Existing measurements of the spindown rate of pulsars place direct constraints on models of dark sectors. Our analysis suggests that dark photons of mass mV∼10-12  eV are excluded by pulsar-timing observations. These constraints also exclude superradiant instabilities triggered by dark photons as an explanation for the spin limit of observed pulsars.
id cern-2263135
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling cern-22631352022-08-10T12:30:50Zdoi:10.1103/PhysRevD.95.124056http://cds.cern.ch/record/2263135engCardoso, VitorPani, PaoloYu, Tien-TienSuperradiance in rotating stars and pulsar-timing constraints on dark photonsphysics.class-phOther Fields of Physicshep-phParticle Physics - Phenomenologyastro-ph.COAstrophysics and Astronomygr-qcGeneral Relativity and CosmologyIn the presence of massive bosonic degrees of freedom, rotational superradiance can trigger an instability that spins down black holes. This leads to peculiar gravitational-wave signatures and distribution in the spin-mass plane, which in turn can impose stringent constraints on ultralight fields. Here, we demonstrate that there is an analogous spindown effect for conducting stars. We show that rotating stars amplify low-frequency electromagnetic waves, and that this effect is largest when the time scale for conduction within the star is of the order of a light crossing time. This has interesting consequences for dark photons, as massive dark photons would cause stars to spin down due to superradiant instabilities. The time scale of the spindown depends on the mass of the dark photon, and on the rotation rate, compactness, and conductivity of the star. Existing measurements of the spindown rate of pulsars place direct constraints on models of dark sectors. Our analysis suggests that dark photons of mass mV∼10-12  eV are excluded by pulsar-timing observations. These constraints also exclude superradiant instabilities triggered by dark photons as an explanation for the spin limit of observed pulsars.In the presence of massive bosonic degrees of freedom, rotational superradiance can trigger an instability that spins down black holes. This leads to peculiar gravitational-wave signatures and distribution in the spin-mass plane, which in turn can impose stringent constraints on ultralight fields. Here, we demonstrate that there is an analogous spindown effect for conducting stars. We show that rotating stars amplify low frequency electromagnetic waves, and that this effect is largest when the time scale for conduction within the star is of the order of a light crossing time. This has interesting consequences for dark photons, as massive dark photons would cause stars to spin down due to superradiant instabilities. The time scale of the spindown depends on the mass of the dark photon, and on the rotation rate, compactness, and conductivity of the star. Existing measurements of the spindown rate of pulsars place direct constraints on models of dark sectors. Our analysis suggests that dark photons of mass $m_V \sim 10^{-12}$ eV are excluded by pulsar-timing observations. These constraints also exclude superradiant instabilities triggered by dark photons as an explanation for the spin limit of observed pulsars.arXiv:1704.06151CERN-TH-2017-082oai:cds.cern.ch:22631352017-04-18
spellingShingle physics.class-ph
Other Fields of Physics
hep-ph
Particle Physics - Phenomenology
astro-ph.CO
Astrophysics and Astronomy
gr-qc
General Relativity and Cosmology
Cardoso, Vitor
Pani, Paolo
Yu, Tien-Tien
Superradiance in rotating stars and pulsar-timing constraints on dark photons
title Superradiance in rotating stars and pulsar-timing constraints on dark photons
title_full Superradiance in rotating stars and pulsar-timing constraints on dark photons
title_fullStr Superradiance in rotating stars and pulsar-timing constraints on dark photons
title_full_unstemmed Superradiance in rotating stars and pulsar-timing constraints on dark photons
title_short Superradiance in rotating stars and pulsar-timing constraints on dark photons
title_sort superradiance in rotating stars and pulsar-timing constraints on dark photons
topic physics.class-ph
Other Fields of Physics
hep-ph
Particle Physics - Phenomenology
astro-ph.CO
Astrophysics and Astronomy
gr-qc
General Relativity and Cosmology
url https://dx.doi.org/10.1103/PhysRevD.95.124056
http://cds.cern.ch/record/2263135
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AT panipaolo superradianceinrotatingstarsandpulsartimingconstraintsondarkphotons
AT yutientien superradianceinrotatingstarsandpulsartimingconstraintsondarkphotons