Thermalisation of light sterile neutrinos in the early universe

IF 5.3 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Steen Hannestad, Irene Tamborra, Thomas Tram
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引用次数: 0

Abstract

Recent cosmological data favour additional relativistic degrees of freedom beyond the three active neutrinos and photons, often referred to as ``dark'' radiation. Light sterile neutrinos is one of the prime candidates for such additional radiation. However, constraints on sterile neutrinos based on the current cosmological data have been derived using simplified assumptions about thermalisation of νs at the Big Bang Nucleosynthesis (BBN) epoch. These assumptions are not necessarily justified and here we solve the full quantum kinetic equations in the (1 active + 1 sterile) scenario and derive the number of thermalised species just before BBN begins (T ≃ 1 MeV) for null (L = 0) and large (L = 10−2) initial lepton asymmetry and for a range of possible mass-mixing parameters. We find that the full thermalisation assumption during the BBN epoch is justified for initial small lepton asymmetry only. Partial or null thermalisation occurs when the initial lepton asymmetry is large.
早期宇宙中光惰性中微子的热化
最近的宇宙学数据支持除了三种活跃的中微子和光子(通常被称为“暗”辐射)之外的其他相对论自由度。光惰性中微子是这种额外辐射的主要候选者之一。然而,基于当前宇宙学数据的无菌中微子的约束已经通过大爆炸核合成(BBN)时期ν的热化的简化假设推导出来。这些假设并不一定是正确的,我们在此求解了(1活性+ 1惰性)场景下的完整量子动力学方程,并推导了零(L = 0)和大(L = 10−2)初始轻子不对称性和一系列可能的质量混合参数下,在BBN开始前(T≃1 MeV)的热化种数。我们发现,BBN期的完全热化假设仅适用于初始的小轻子不对称。当初始轻子不对称性较大时,会发生部分热化或零热化。
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来源期刊
Journal of Cosmology and Astroparticle Physics
Journal of Cosmology and Astroparticle Physics 地学天文-天文与天体物理
CiteScore
10.20
自引率
23.40%
发文量
632
审稿时长
1 months
期刊介绍: Journal of Cosmology and Astroparticle Physics (JCAP) encompasses theoretical, observational and experimental areas as well as computation and simulation. The journal covers the latest developments in the theory of all fundamental interactions and their cosmological implications (e.g. M-theory and cosmology, brane cosmology). JCAP''s coverage also includes topics such as formation, dynamics and clustering of galaxies, pre-galactic star formation, x-ray astronomy, radio astronomy, gravitational lensing, active galactic nuclei, intergalactic and interstellar matter.
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