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Large-Field Inflation and Supersymmetry Breaking

Large-field inflation is an interesting and predictive scenario. Its non-trivial embedding in supergravity was intensively studied in the recent literature, whereas its interplay with supersymmetry breaking has been less thoroughly investigated. We consider the minimal viable model of chaotic inflat...

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Detalles Bibliográficos
Autores principales: Buchmuller, Wilfried, Dudas, Emilian, Heurtier, Lucien, Wieck, Clemens
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP09(2014)053
http://cds.cern.ch/record/1728129
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author Buchmuller, Wilfried
Dudas, Emilian
Heurtier, Lucien
Wieck, Clemens
author_facet Buchmuller, Wilfried
Dudas, Emilian
Heurtier, Lucien
Wieck, Clemens
author_sort Buchmuller, Wilfried
collection CERN
description Large-field inflation is an interesting and predictive scenario. Its non-trivial embedding in supergravity was intensively studied in the recent literature, whereas its interplay with supersymmetry breaking has been less thoroughly investigated. We consider the minimal viable model of chaotic inflation in supergravity containing a stabilizer field, and add a Polonyi field. Furthermore, we study two possible extensions of the minimal setup. We show that there are various constraints: first of all, it is very hard to couple an O'Raifeartaigh sector with the inflaton sector, the simplest viable option being to couple them only through gravity. Second, even in the simplest model the gravitino mass is bounded from above parametrically by the inflaton mass. Therefore, high-scale supersymmetry breaking is hard to implement in a chaotic inflation setup. As a separate comment we analyze the simplest chaotic inflation construction without a stabilizer field, together with a supersymmetrically stabilized Kahler modulus. Without a modulus, the potential of such a model is unbounded from below. We show that a heavy modulus cannot solve this problem.
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spelling cern-17281292023-10-04T06:04:29Zdoi:10.1007/JHEP09(2014)053http://cds.cern.ch/record/1728129engBuchmuller, WilfriedDudas, EmilianHeurtier, LucienWieck, ClemensLarge-Field Inflation and Supersymmetry Breakinghep-thLarge-field inflation is an interesting and predictive scenario. Its non-trivial embedding in supergravity was intensively studied in the recent literature, whereas its interplay with supersymmetry breaking has been less thoroughly investigated. We consider the minimal viable model of chaotic inflation in supergravity containing a stabilizer field, and add a Polonyi field. Furthermore, we study two possible extensions of the minimal setup. We show that there are various constraints: first of all, it is very hard to couple an O'Raifeartaigh sector with the inflaton sector, the simplest viable option being to couple them only through gravity. Second, even in the simplest model the gravitino mass is bounded from above parametrically by the inflaton mass. Therefore, high-scale supersymmetry breaking is hard to implement in a chaotic inflation setup. As a separate comment we analyze the simplest chaotic inflation construction without a stabilizer field, together with a supersymmetrically stabilized Kahler modulus. Without a modulus, the potential of such a model is unbounded from below. We show that a heavy modulus cannot solve this problem.Large-field inflation is an interesting and predictive scenario. Its non-trivial embedding in supergravity was intensively studied in the recent literature, whereas its interplay with supersymmetry breaking has been less thoroughly investigated. We consider the minimal viable model of chaotic inflation in supergravity containing a stabilizer field, and add a Polonyi field. Furthermore, we study two possible extensions of the minimal setup. We show that there are various constraints: first of all, it is very hard to couple an O'Raifeartaigh sector with the inflaton sector, the simplest viable option being to couple them only through gravity. Second, even in the simplest model the gravitino mass is bounded from above parametrically by the inflaton mass. Therefore, high-scale supersymmetry breaking is hard to implement in a chaotic inflation setup. As a separate comment we analyze the simplest chaotic inflation construction without a stabilizer field, together with a supersymmetrically stabilized Kahler modulus. Without a modulus, the potential of such a model is unbounded from below. We show that a heavy modulus cannot solve this problem.arXiv:1407.0253DESY-14-100CPHT-RR037.0614oai:cds.cern.ch:17281292014-07-01
spellingShingle hep-th
Buchmuller, Wilfried
Dudas, Emilian
Heurtier, Lucien
Wieck, Clemens
Large-Field Inflation and Supersymmetry Breaking
title Large-Field Inflation and Supersymmetry Breaking
title_full Large-Field Inflation and Supersymmetry Breaking
title_fullStr Large-Field Inflation and Supersymmetry Breaking
title_full_unstemmed Large-Field Inflation and Supersymmetry Breaking
title_short Large-Field Inflation and Supersymmetry Breaking
title_sort large-field inflation and supersymmetry breaking
topic hep-th
url https://dx.doi.org/10.1007/JHEP09(2014)053
http://cds.cern.ch/record/1728129
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AT heurtierlucien largefieldinflationandsupersymmetrybreaking
AT wieckclemens largefieldinflationandsupersymmetrybreaking