论文标题

部分可观测时空混沌系统的无模型预测

Neutrino Flavor Model Building and the Origins of Flavor and CP Violation: A Snowmass White Paper

论文作者

Almumin, Yahya, Chen, Mu-Chun, Cheng, Murong, Knapp-Perez, Victor, Li, Yulun, Mondol, Adreja, Ramos-Sanchez, Saul, Ratz, Michael, Shukla, Shreya

论文摘要

除了标准粒子物理学的标准模型之外,中微子部门提供了最敏感的新物理探针之一。中微子质量产生的机制仍然未知。观察到的中微子质量的抑制很大程度上暗示了大统一理论(GUT)的规模的顺序,这是中微子的独特特征,并未由带电的费米子共享。中微子质量和混合的起源是费米昂质量和混合的杰出难题的一部分,这在SM中没有解释。为了更好地理解质量层次结构和风味混合的结构的起源,夸克和Lepton领域的风味模型构建非常重要,这构成了SM参数的主要部分。基于非亚伯离散风味对称性和模块化风味对称性的中微子风味模型建设中的最新活动已被证明是一个有前途的探索方向。新兴模型提供了一个框架,该框架在风味领域的未确定参数数量大大减少。基于非亚伯离散风味对称性及其模块化变体的模型构建使粒子物理社区能够解释中微子实验的当前和预期的即将到来的数据。基于此类框架的风味模型构建也可以为可能的紫外线完成,尤其是字符串理论提供连接。我们强调了构建模型的重要性,在这种模型中,理论预测的不确定性比中微子实验中测量的误差栏要小,或者最多兼容。

The neutrino sector offers one of the most sensitive probes of new physics beyond the Standard Model of Particle Physics. The mechanism of neutrino mass generation is still unknown. The observed suppression of neutrino masses hints at a large scale, conceivably of the order of the scale of a Grand Unified Theory (GUT), a unique feature of neutrinos that is not shared by the charged fermions. The origin of neutrino masses and mixing is part of the outstanding puzzle of fermion masses and mixings, which is not explained in the SM. Flavor model building for both quark and lepton sectors is important in order to gain a better understanding of the origin of the structure of mass hierarchy and flavor mixing, which constitute the dominant fraction of the SM parameters. Recent activities in neutrino flavor model building based on non-Abelian discrete flavor symmetries and modular flavor symmetries have been shown to be a promising direction to explore. The emerging models provide a framework that has a significantly reduced number of undetermined parameters in the flavor sector. Model building based on non-Abelian discrete flavor symmetries and their modular variants enables the particle physics community to interpret the current and anticipated upcoming data from neutrino experiments. Pursuit of flavor model building based on such frameworks can also provide connections to possible UV completions, in particular to string theory. We emphasize the importance of constructing models in which the uncertainties of theoretical predictions are smaller than, or at most compatible with, the error bars of measurements in neutrino experiments.

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