用地球和宇宙实验加强对最轻中微子质量的限定

The Gambit Cosmology Workgroup Patrick Stocker, C. Bal'azs, Sanjay Bloor, T. Bringmann, T. Gonzalo, Will Handley, Selim Hotinli, C. Howlett, F. Kahlhoefer, Janina J. Renk, P. Scott, A. Vincent, M. White
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引用次数: 19

摘要

我们从最近最可靠的宇宙学和地球数据中确定了最轻中微子的质量上限。边缘化早期可能的有效相对论自由度($N_\ mathm {eff}$)并假设正常质量排序,在95%置信度下,最轻中微子的质量小于0.037 eV;当顺序倒转时,边界为0.042 eV。这比最近的其他极限提高了近60%,将最轻的中微子的质量限定在只比最大的质量分裂大一点。我们展示了真实质量模型的影响,以及不同来源的$N_\ mathm {eff}$。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strengthening the bound on the mass of the lightest neutrino with terrestrial and cosmological experiments
We determine the upper limit on the mass of the lightest neutrino from the most robust recent cosmological and terrestrial data. Marginalising over possible effective relativistic degrees of freedom at early times ($N_\mathrm{eff}$) and assuming normal mass ordering, the mass of the lightest neutrino is less than 0.037 eV at 95% confidence; with inverted ordering, the bound is 0.042 eV. This improves nearly 60% on other recent limits, bounding the mass of the lightest neutrino to be barely larger than the largest mass splitting. We show the impacts of realistic mass models, and different sources of $N_\mathrm{eff}$.
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