论文标题

早期宇宙中的中微子风味混合断裂各向同性

Neutrino flavor mixing breaks isotropy in the early universe

论文作者

Hansen, Rasmus S. L., Shalgar, Shashank, Tamborra, Irene

论文摘要

通常认为中微子场在早期宇宙中是各向同性和均匀的。然而,由于中微子密度较大,中微子场的各向同性的少量扰动可能会因中微子自我相互作用引起的非线性风味混合而扩大。我们在多角度各向异性环境中进行了中微子风味演化的第一个数值模拟。由于所涉及的计算挑战,我们采用了一个简化的框架,该框架由具有两个角度箱的均匀宇宙组成 - 左右移动模式 - 用于中微子和抗肿瘤,以及碰撞项的近似形式,超出了通常采用的潮湿近似值。通过假设$ \ Mathcal {o}(10^{ - 15})$的左右初始左右不对称,我们令人信服地证明了风味进化在两种大规模有序中都会受到影响,这对有效数量的热兴奋的中性中微子物种($ n_ _ {\ mathrm {eff}} $)。值得注意的是,对$ n _ {\ rm eff} $的校正与正常订购中有限温度QED效果的高阶校正相当。此外,通过假设中微子的初始不对称性在与Baryon One [$ \ Mathcal {o}(10^{ - 9})$]相同的顺序中,我们发现中源性抗氨基抗体的不对称性不对称生长几个级数,几个阶数量的同位粒子以及anisotrop的初始条件。这项工作清楚地表明,必须重新审视有关早期宇宙中中微子风味混合的标准假设,尤其是鉴于对宇宙学可观察物的可能影响。

The neutrino field is commonly assumed to be isotropic and homogeneous in the early universe. However, due to the large neutrino density, a small perturbation of the isotropy of the neutrino field could potentially be amplified by the non-linear flavor mixing caused by neutrino self-interactions. We carry out the first numerical simulations of the neutrino flavor evolution in a multi-angle anisotropic setting. Due to the computational challenges involved, we adopt a simplified framework consisting of a homogeneous universe with two angle bins -- left and right moving modes -- for neutrinos and antineutrinos, together with an approximate form for the collision term which goes beyond the commonly adopted damping approximation. By assuming a small initial left-right asymmetry of $\mathcal{O}(10^{-15})$, we convincingly demonstrate that flavor evolution can be affected in both mass orderings, with implications on the effective number of thermally excited neutrino species ($N_{\mathrm{eff}}$). Notably, the correction to $N_{\rm eff}$ is comparable to higher order corrections from finite temperature QED effects in normal ordering. In addition, by assuming an initial lepton asymmetry in the neutrino sector of the same order as the baryon one [$\mathcal{O}(10^{-9})$], we find that the neutrino-antineutrino asymmetry grows by several orders of magnitude for isotropic as well as anisotropic initial conditions. This work clearly shows that it is imperative to critically revisit standard assumptions concerning neutrino flavor mixing in the early universe, especially in the light of possible implications on the cosmological observables.

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