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Baryogenesis from Decaying Magnetic Helicity in Axiogenesis

Generating axion dark matter through the kinetic misalignment mechanism implies the generation of large asymmetries for Standard Model fermions in the early universe. Even if these asymmetries are washed out at later times, they can trigger a chiral plasma instability in the early universe. Similarl...

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Detalles Bibliográficos
Autores principales: Co, Raymond T., Domcke, Valerie, Harigaya, Keisuke
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP07(2023)179
http://cds.cern.ch/record/2847474
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author Co, Raymond T.
Domcke, Valerie
Harigaya, Keisuke
author_facet Co, Raymond T.
Domcke, Valerie
Harigaya, Keisuke
author_sort Co, Raymond T.
collection CERN
description Generating axion dark matter through the kinetic misalignment mechanism implies the generation of large asymmetries for Standard Model fermions in the early universe. Even if these asymmetries are washed out at later times, they can trigger a chiral plasma instability in the early universe. Similarly, a direct coupling of the axion with the hypercharge gauge field can trigger a tachyonic instability. These instabilities produce helical magnetic fields, which are preserved until the electroweak phase transition. At the electroweak phase transition, these become a source of baryon asymmetry, which can be much more efficient than the original axiogenesis proposal. We discuss constraints on axion dark matter production from the overproduction of the baryon asymmetry as well as a minimal, albeit fine-tuned setup, where both the correct dark matter abundance and baryon asymmetry can be achieved. For a given axion decay constant, this leads to a sharp prediction for the mass of the radial direction of the Peccei Quinn field, which is a soft mass scale in supersymmetric theories.
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institution Organización Europea para la Investigación Nuclear
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publishDate 2022
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spelling cern-28474742023-08-11T04:12:32Zdoi:10.1007/JHEP07(2023)179http://cds.cern.ch/record/2847474engCo, Raymond T.Domcke, ValerieHarigaya, KeisukeBaryogenesis from Decaying Magnetic Helicity in Axiogenesisastro-ph.COAstrophysics and Astronomyhep-phParticle Physics - PhenomenologyGenerating axion dark matter through the kinetic misalignment mechanism implies the generation of large asymmetries for Standard Model fermions in the early universe. Even if these asymmetries are washed out at later times, they can trigger a chiral plasma instability in the early universe. Similarly, a direct coupling of the axion with the hypercharge gauge field can trigger a tachyonic instability. These instabilities produce helical magnetic fields, which are preserved until the electroweak phase transition. At the electroweak phase transition, these become a source of baryon asymmetry, which can be much more efficient than the original axiogenesis proposal. We discuss constraints on axion dark matter production from the overproduction of the baryon asymmetry as well as a minimal, albeit fine-tuned setup, where both the correct dark matter abundance and baryon asymmetry can be achieved. For a given axion decay constant, this leads to a sharp prediction for the mass of the radial direction of the Peccei Quinn field, which is a soft mass scale in supersymmetric theories.Generating axion dark matter through the kinetic misalignment mechanism implies the generation of large asymmetries for Standard Model fermions in the early universe. Even if these asymmetries are washed out at later times, they can trigger a chiral plasma instability in the early universe. Similarly, a direct coupling of the axion with the hypercharge gauge field can trigger a tachyonic instability. These instabilities produce helical magnetic fields, which are preserved until the electroweak phase transition. At the electroweak phase transition, these become a source of baryon asymmetry, which can be much more efficient than the original axiogenesis proposal. We discuss constraints on axion dark matter production from the overproduction of the baryon asymmetry as well as a minimal, albeit fine-tuned setup, where both the correct dark matter abundance and baryon asymmetry can be achieved. For a given axion decay constant, this leads to a sharp prediction for the mass of the radial direction of the Peccei Quinn field, which is a soft mass scale in supersymmetric theories.arXiv:2211.12517UMN--TH--4206/22FTPI--MINN--22/36CERN-TH-2022-199oai:cds.cern.ch:28474742022-11-22
spellingShingle astro-ph.CO
Astrophysics and Astronomy
hep-ph
Particle Physics - Phenomenology
Co, Raymond T.
Domcke, Valerie
Harigaya, Keisuke
Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title_full Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title_fullStr Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title_full_unstemmed Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title_short Baryogenesis from Decaying Magnetic Helicity in Axiogenesis
title_sort baryogenesis from decaying magnetic helicity in axiogenesis
topic astro-ph.CO
Astrophysics and Astronomy
hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1007/JHEP07(2023)179
http://cds.cern.ch/record/2847474
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AT domckevalerie baryogenesisfromdecayingmagnetichelicityinaxiogenesis
AT harigayakeisuke baryogenesisfromdecayingmagnetichelicityinaxiogenesis