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Neutrino Oscillations and Non-standard Interactions

机译:中微子振荡和非标准相互作用

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Current neutrino experiments are measuring the neutrino mixing parameters with an unprecedented accuracy. The upcoming generation of neutrino experiments will be sensitive to subdominant oscillation effects that can give information on the yet-unknown neutrino parameters: the Dirac CP-violating phase, the mass ordering and the octant of $heta_{23}$. Determining the exact values of neutrino mass and mixing parameters is crucial to test neutrino models and flavor symmetries designed to predict these neutrino parameters. In the first part of this review, we summarize the current status of the neutrino oscillation parameter determination. We consider the most recent data from all solar experiments and the atmospheric data from Super-Kamiokande, IceCube and ANTARES. We also implement the data from the reactor neutrino experiments KamLAND, Daya Bay, RENO and Double Chooz as well as the long baseline neutrino data from MINOS, T2K and NOvA. If in addition to the standard interactions, neutrinos have subdominant yet-unknown Non-Standard Interactions (NSI) with matter fields, extracting the values of these parameters will suffer from new degeneracies and ambiguities. We review such effects and formulate the conditions on the NSI parameters under which the precision measurement of neutrino oscillation parameters can be distorted. Like standard weak interactions, the non-standard interaction can be categorized into two groups: Charged Current (CC) NSI and Neutral Current (NC) NSI. Our focus will be mainly on neutral current NSI because it is possible to build a class of models that give rise to sizeable NC NSI with discernible effects on neutrino oscillation. These models are based on new $U(1)$ gauge symmetry with a gauge boson of mass $lesssim 10$~MeV. The UV complete model should be of course electroweak invariant which in general implies that along with neutrinos, charged fermions also acquire new interactions on which there are strong bounds. We enumerate the bounds that already exist on the electroweak symmetric models and demonstrate that it is possible to build viable models avoiding all these bounds. In the end, we review methods to test these models and suggest approaches to break the degeneracies in deriving neutrino mass parameters caused by NSI.
机译:当前的中微子实验正在以前所未有的精度测量中微子混合参数。即将到来的中微子实验一代将对主要的振荡效应敏感,这些振荡效应可提供有关未知的中微子参数的信息:狄拉克CP违反相,质量有序化和$ theta_ {23} $的八分圆。确定中微子质量和混合参数的确切值对于测试中微子模型和旨在预测这些中微子参数的风味对称性至关重要。在本文的第一部分中,我们总结了中微子振荡参数确定的当前状态。我们考虑了来自所有太阳实验的最新数据以及来自Super-Kamiokande,IceCube和ANTARES的大气数据。我们还实现了来自反应堆中微子实验KamLAND,大亚湾,RENO和Double Chooz的数据,以及来自MINOS,T2K和NOvA的长基线中微子数据。如果除了标准相互作用之外,中微子还具有与物质场相关的占主导地位的未知非标准相互作用(NSI),则提取这些参数的值将遭受新的简并性和歧义性。我们回顾了这种影响,并在NSI参数上制定了条件,在此条件下中微子振荡参数的精确测量可能会失真。像标准的弱相互作用一样,非标准的相互作用可以分为两类:充电电流(CC)NSI和中性电流(NC)NSI。我们的重点将主要放在中性电流NSI上,因为有可能建立一类模型,从而引起可观的NC NSI并对中微子振荡产生明显影响。这些模型基于具有$ lesssim 10 $〜MeV质量规范玻色子的新$ U(1)$规范对称性。完整的紫外线模型当然应该是电弱不变的,这通常意味着与中微子一起,带电荷的费米子还会获得新的相互作用,并在这些相互作用上有很强的界限。我们列举了电弱对称模型上已经存在的边界,并证明可以避免所有这些边界而建立可行的模型。最后,我们回顾了测试这些模型的方法,并提出了打破由NSI引起的中微子质量参数的简并性的方法。

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