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Defrosting and Blast Freezing Dark Matter

We show that the present-day dark matter abundance can be produced through a novel mechanism that involves a very rapid thermal freeze-out caused by inhomogeneous heating and successive fast cooling of small fireballs in the early Universe. The fireballs can be produced from energy deposited in smal...

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Autores principales: Flores, Marcos M., Kouvaris, Chris, Kusenko, Alexander
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:http://cds.cern.ch/record/2866754
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author Flores, Marcos M.
Kouvaris, Chris
Kusenko, Alexander
author_facet Flores, Marcos M.
Kouvaris, Chris
Kusenko, Alexander
author_sort Flores, Marcos M.
collection CERN
description We show that the present-day dark matter abundance can be produced through a novel mechanism that involves a very rapid thermal freeze-out caused by inhomogeneous heating and successive fast cooling of small fireballs in the early Universe. The fireballs can be produced from energy deposited in small scale structure growth induced by Yukawa interactions in certain particle species. Yukawa interactions are known to cause growth of halos even during a radiation dominated era, and the same interactions facilitate cooling and collapse of the halos by the emission of scalars. Energy deposited in the Standard Model plasma at the locations of the halo collapse can heat the plasma, re-establishing thermal equilibrium. The subsequent expansion and cooling of plasma fireballs leads to freeze-out of dark matter on time scales much shorter than the Hubble time. This mechanism can produce the right abundance of dark matter for masses and annihilation cross sections previously thought to be ruled out.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-28667542023-10-03T15:51:52Zhttp://cds.cern.ch/record/2866754engFlores, Marcos M.Kouvaris, ChrisKusenko, AlexanderDefrosting and Blast Freezing Dark Matterhep-phParticle Physics - PhenomenologyWe show that the present-day dark matter abundance can be produced through a novel mechanism that involves a very rapid thermal freeze-out caused by inhomogeneous heating and successive fast cooling of small fireballs in the early Universe. The fireballs can be produced from energy deposited in small scale structure growth induced by Yukawa interactions in certain particle species. Yukawa interactions are known to cause growth of halos even during a radiation dominated era, and the same interactions facilitate cooling and collapse of the halos by the emission of scalars. Energy deposited in the Standard Model plasma at the locations of the halo collapse can heat the plasma, re-establishing thermal equilibrium. The subsequent expansion and cooling of plasma fireballs leads to freeze-out of dark matter on time scales much shorter than the Hubble time. This mechanism can produce the right abundance of dark matter for masses and annihilation cross sections previously thought to be ruled out.arXiv:2306.04056IPMU23-0015oai:cds.cern.ch:28667542023-06-06
spellingShingle hep-ph
Particle Physics - Phenomenology
Flores, Marcos M.
Kouvaris, Chris
Kusenko, Alexander
Defrosting and Blast Freezing Dark Matter
title Defrosting and Blast Freezing Dark Matter
title_full Defrosting and Blast Freezing Dark Matter
title_fullStr Defrosting and Blast Freezing Dark Matter
title_full_unstemmed Defrosting and Blast Freezing Dark Matter
title_short Defrosting and Blast Freezing Dark Matter
title_sort defrosting and blast freezing dark matter
topic hep-ph
Particle Physics - Phenomenology
url http://cds.cern.ch/record/2866754
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AT kouvarischris defrostingandblastfreezingdarkmatter
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