论文标题

测试简短基线中微子异常的解释

Testing Explanations of Short Baseline Neutrino Anomalies

论文作者

Foppiani, Nicolò

论文摘要

中微子振荡的实验性观察对中微子的物理性产生了深远的影响,从理论上被很好地理解到需要超出粒子物理标准模型的新物理学。确实,中微子质量的奥秘意味着以前从未观察到过的新颗粒,通常称为无菌中微子,因为它们不会经历标准的弱相互作用。尽管中微子振荡测量进入了精确的时代,达到了百分比的精度,但许多实验结果表现出与标准模型的显着差异,在基线比典型的振荡基线(如LSND,Miniboone,胆管,耐加仑实验,和反应型抗激毒菌群测量)短得多。这些较短的基线异常可以通过添加轻质无菌中微子来解释,质量为$ 1-10〜 \ text {ev} $范围,但是,在许多无效的实验观察中,质量很大。其他解释依赖于$ 1-500〜 \ text {Mev} $中质量的无菌中微子可以解决张力。在这里,我们测试两个类别的模型。一方面,我们寻找在短基线上收集的数据集,这可能会限制沉重的无菌中微子模型。我们发现最小模型是完全限制的,但是该模型的几个扩展可能会削弱当前约束,并通过当前和将来的数据集进行测试。另一方面,我们测试了由轻型无菌状态引起的短基线中中微子振荡的存在,并由微酮实验收集的数据,这是一个专门设计用于解决每种中微子相互作用的细节的液体氩时间预测室。我们报告了两项分析的无效结果,进一步限制了短基线异常的可能解释空间。如果新物理学位于短基线异常拼图后面,那么绝对不会由简单的模型描述。

The experimental observation of neutrino oscillations profoundly impacted the physics of neutrinos, from being well understood theoretically to requiring new physics beyond the standard model of particle physics. Indeed, the mystery of neutrino masses implies the presence of new particles never observed before, often called sterile neutrinos, as they would not undergo standard weak interactions. And while neutrino oscillation measurements entered the precision era, reaching percent-level precision, many experimental results show significant discrepancies with the standard model, at baselines much shorter than typical oscillation baselines, like LSND, MiniBooNE, gallium experiments, and reactor antineutrino measurements. These short baseline anomalies could be explained by the addition of a light sterile neutrino, with mass in the $1-10~\text{eV}$ range, however, in strong tension with many null experimental observations. Other explanations that rely on sterile neutrinos with masses in the $1-500~\text{MeV}$ could resolve the tension. Here we test both classes of models. On the one hand, we look for datasets collected at a short baseline which can constrain heavy sterile neutrino models. We find that the minimal model is fully constrained, but several extensions of this model could weaken the current constraint and be tested with current and future datasets. On the other hand, we test the presence of neutrino oscillations at short baselines, induced by a light sterile state, with the data collected by the MicroBooNE experiment, a liquid argon time projection chamber specifically designed to resolve the details of each neutrino interaction. We report null results from both analyses, further constraining the space of possible explanations for the short baseline anomalies. If new physics lies behind the short baseline anomaly puzzle, it is definitely not described by a simple model.

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