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Direct measurements of neutrino mass

机译:直接测量中微子质量

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The turn of the 21st century witnessed a sudden shift in our fundamental understanding of particle physics. While the minimal Standard Model predicts that neutrino masses are exactly zero, the discovery of neutrino oscillations proved the Standard Model wrong. Neutrino oscillation measurements, however, shed light neither on the scale of neutrino masses, nor on the mechanism by which those are generated. The neutrino mass scale is most directly accessed by studying the energy spectrum generated by beta decay or electron capture - a technique dating back to Enrico Fermi's formulation of radioactive decay. In this Article, we review the methods and techniques-both past and present-aimed at measuring neutrino masses kinematically. We focus on recent experimental developments that have emerged in the past decade, overview the spectral refinements that are essential in the treatment of the most sensitive experiments, and give a simple yet effective protocol for estimating the sensitivity. Finally, we provide an outlook of what future experiments might be able to achieve.
机译:21世纪之交,我们对粒子物理学的基本理解发生了突然转变。虽然最小标准模型预测中微子质量为零,但中微子振荡的发现证明标准模型是错误的。然而,中微子振荡测量既不能揭示中微子质量的大小,也不能揭示产生中微子质量的机制。通过研究β衰变或电子俘获产生的能谱,可以最直接地获得中微子质量尺度——这项技术可以追溯到恩里科·费米的放射性衰变公式。在这篇文章中,我们回顾了过去和现在用于测量中微子质量的方法和技术。我们关注在过去十年中出现的最新实验发展,概述在处理最敏感实验中必不可少的光谱改进,并给出一个简单但有效的评估灵敏度的方案。最后,我们对未来的实验可能实现的目标进行了展望。

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