论文标题

从宇宙微波背景下隐藏狄拉克中微子

Concealing Dirac neutrinos from cosmic microwave background

论文作者

Biswas, Anirban, Ghosh, Dilip Kumar, Nanda, Dibyendu

论文摘要

在通货膨胀时期开始,大爆炸核合成(BBN)之前的延长辐射支配地位尚未一致建立。相反,如果宇宙经历了非标准的宇宙学阶段,它将显着改变哈勃扩张率,并且还可能通过非绝热进化产生实质性的熵。这导致对遗物物种的性质产生重大影响,在BBN附近的标准辐射统治复兴之前,从热浴中解耦。在这项工作中,考虑到中微子的狄拉克性质,我们研究了在两个可能的非标准宇宙学阶段存在的超相关右手中微子($ν_r$ s)的脱钩。尽管在这两种情况下,我们都修改了哈勃参数,从而在早期宇宙中引起了更快的膨胀,但其中一种情况预测了非绝热进化,因此由于膨胀而导致光子温度的红移较慢。考虑到具有Fermi-Dirac分布和Pauli阻塞因子的碰撞项的最通用形式,我们以数值求解了Boltzmann方程,以获取三个右手中微子的$δ{\ rm n} _ {\ rm eff} $。我们发现,对于很大一部分参数空间,$ν_r$的早期脱钩的综合效果以及较慢的光子浴的红移很容易隐藏右手中微子的签名,尽管精确测量了$δ{\ rm n} _ {\ rm feff} _- {\ rm eff} $,但在下一代$中,这也可以隐藏但是,仅适用于仅仅快速扩展的情况。

The existence of prolonged radiation domination prior to the Big Bang Nucleosynthesis (BBN), starting just after the inflationary epoch, is not yet established unanimously. If instead, the universe undergoes a non-standard cosmological phase, it will alter the Hubble expansion rate significantly and may also generate substantial entropy through non-adiabatic evolution. This leads to a thumping impact on the properties of relic species decoupled from the thermal bath before the revival of the standard radiation domination in the vicinity of the BBN. In this work, considering the Dirac nature of neutrinos, we have studied decoupling of ultra-relativistic right-handed neutrinos ($ν_R$s) in presence of two possible non-standard cosmological phases. While in both cases we have modified Hubble parameters causing faster expansions in the early universe, one of the situations predicts a non-adiabatic evolution and thereby a slower redshift of the photon temperature due to the expansion. Considering the most general form of the collision term with Fermi-Dirac distribution and Pauli blocking factors, we have solved the Boltzmann equation numerically to obtain $Δ{\rm N}_{\rm eff}$ for the three right-handed neutrinos. We have found that for a large portion of parameter space, the combined effect of early decoupling of $ν_R$ as well as the slower redshift of photon bath can easily hide the signature of right-handed neutrinos, in spite of precise measurement of $Δ{\rm N}_{\rm eff}$, at the next generation CMB experiments like CMB-S4, SPT-3G etc. This however will not be applicable for the scenarios with only fast expansion.

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