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Lyman-alpha constraints on warm and on warm-plus-cold dark matter models
We revisit Lyman-alpha bounds on the dark matter mass in Lambda Warm Dark Matter (Lambda-WDM) models, and derive new bounds in the case of mixed Cold plus Warm models (Lambda-CWDM), using a set up which is a good approximation for several theoretically well-motivated dark matter models. We combine W...
Autores principales: | , , , |
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Lenguaje: | eng |
Publicado: |
2008
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Acceso en línea: | https://dx.doi.org/10.1088/1475-7516/2009/05/012 http://cds.cern.ch/record/1143083 |
_version_ | 1780915629932412928 |
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author | Boyarsky, Alexey Lesgourgues, Julien Ruchayskiy, Oleg Viel, Matteo |
author_facet | Boyarsky, Alexey Lesgourgues, Julien Ruchayskiy, Oleg Viel, Matteo |
author_sort | Boyarsky, Alexey |
collection | CERN |
description | We revisit Lyman-alpha bounds on the dark matter mass in Lambda Warm Dark Matter (Lambda-WDM) models, and derive new bounds in the case of mixed Cold plus Warm models (Lambda-CWDM), using a set up which is a good approximation for several theoretically well-motivated dark matter models. We combine WMAP5 results with two different Lyman-alpha data sets, including observations from the Sloan Digital Sky Survey. We pay a special attention to systematics, test various possible sources of error, and compare the results of different statistical approaches. Expressed in terms of the mass of a non-resonantly produced sterile neutrino, our bounds read m_NRP > 8 keV (frequentist 99.7% confidence limit) or m_NRP > 12.1 keV (Bayesian 95% credible interval) in the pure Lambda-WDM limit. For the mixed model, we obtain limits on the mass as a function of the warm dark matter fraction F_WDM. Within the mass range studied here (5 keV < m_NRP < infinity), we find that any mass value is allowed when F_WDM < 0.6 (frequentist 99.7% confidence limit); similarly, the Bayesian joint probability on (F_WDM, 1/m_NRP) allows any value of the mass at the 95% confidence level, provided that F_WDM < 0.35. |
id | cern-1143083 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2008 |
record_format | invenio |
spelling | cern-11430832021-05-03T20:07:38Zdoi:10.1088/1475-7516/2009/05/012http://cds.cern.ch/record/1143083engBoyarsky, AlexeyLesgourgues, JulienRuchayskiy, OlegViel, MatteoLyman-alpha constraints on warm and on warm-plus-cold dark matter modelsAstrophysics and AstronomyWe revisit Lyman-alpha bounds on the dark matter mass in Lambda Warm Dark Matter (Lambda-WDM) models, and derive new bounds in the case of mixed Cold plus Warm models (Lambda-CWDM), using a set up which is a good approximation for several theoretically well-motivated dark matter models. We combine WMAP5 results with two different Lyman-alpha data sets, including observations from the Sloan Digital Sky Survey. We pay a special attention to systematics, test various possible sources of error, and compare the results of different statistical approaches. Expressed in terms of the mass of a non-resonantly produced sterile neutrino, our bounds read m_NRP > 8 keV (frequentist 99.7% confidence limit) or m_NRP > 12.1 keV (Bayesian 95% credible interval) in the pure Lambda-WDM limit. For the mixed model, we obtain limits on the mass as a function of the warm dark matter fraction F_WDM. Within the mass range studied here (5 keV < m_NRP < infinity), we find that any mass value is allowed when F_WDM < 0.6 (frequentist 99.7% confidence limit); similarly, the Bayesian joint probability on (F_WDM, 1/m_NRP) allows any value of the mass at the 95% confidence level, provided that F_WDM < 0.35.We revisit Lyman-alpha bounds on the dark matter mass in Lambda Warm Dark Matter (Lambda-WDM) models, and derive new bounds in the case of mixed Cold plus Warm models (Lambda-CWDM), using a set up which is a good approximation for several theoretically well-motivated dark matter models. We combine WMAP5 results with two different Lyman-alpha data sets, including observations from the Sloan Digital Sky Survey. We pay a special attention to systematics, test various possible sources of error, and compare the results of different statistical approaches. Expressed in terms of the mass of a non-resonantly produced sterile neutrino, our bounds read m_NRP > 8 keV (frequentist 99.7% confidence limit) or m_NRP > 12.1 keV (Bayesian 95% credible interval) in the pure Lambda-WDM limit. For the mixed model, we obtain limits on the mass as a function of the warm dark matter fraction F_WDM. Within the mass range studied here (5 keV < m_NRP < infinity), we find that any mass value is allowed when F_WDM < 0.6 (frequentist 99.7% confidence limit); similarly, the Bayesian joint probability on (F_WDM, 1/m_NRP) allows any value of the mass at the 95% confidence level, provided that F_WDM < 0.35.CERN-PH-TH-2008-234LAPTH-1290-08arXiv:0812.0010CERN-PH-TH-2008-234LAPTH-1290-08oai:cds.cern.ch:11430832008-12-02 |
spellingShingle | Astrophysics and Astronomy Boyarsky, Alexey Lesgourgues, Julien Ruchayskiy, Oleg Viel, Matteo Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title | Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title_full | Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title_fullStr | Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title_full_unstemmed | Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title_short | Lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
title_sort | lyman-alpha constraints on warm and on warm-plus-cold dark matter models |
topic | Astrophysics and Astronomy |
url | https://dx.doi.org/10.1088/1475-7516/2009/05/012 http://cds.cern.ch/record/1143083 |
work_keys_str_mv | AT boyarskyalexey lymanalphaconstraintsonwarmandonwarmpluscolddarkmattermodels AT lesgourguesjulien lymanalphaconstraintsonwarmandonwarmpluscolddarkmattermodels AT ruchayskiyoleg lymanalphaconstraintsonwarmandonwarmpluscolddarkmattermodels AT vielmatteo lymanalphaconstraintsonwarmandonwarmpluscolddarkmattermodels |