论文标题

电子和核子背景中的中微子变质

Neutrino decoherence in an electron and nucleon background

论文作者

Nieves, José F., Sahu, Sarira

论文摘要

我们考虑了由电子和核子组成的物质背景中的非前方中微子散射过程引起的活性中微子的传播的分流作用。我们计算了此类过程产生的中微子自我能源的假想部分的贡献。由于最初的中微子状态被耗尽,但实际上并未消失(最初的中微子转变为不同风味但不会衰减的中微子),这些过程应与无法描述的状态载体相干演化相关。基于我们先前的工作中所开发的形式主义,用于使用国家随机演变的概念来处理非前瞻性散射过程,我们确定了跳跃操作员在主或林德布拉德方程式的背景下使用的跳跃操作员,这是根据对非前方中性散射对中性中性自我自我自我自我生物的想象中中性散射贡献的结果的结果。作为估算实际利益情况下的变质效应的指南,我们为不同背景条件的分流项提供了明确的公式,并指出了一些显着特征,尤其是中微子能量依赖性。为了建立接触wih先前的工作,其中的分解项被视为现象学参数,我们考虑了在两代情况下的进化方程的解决方案。我们提供的公式对于在各种条件和环境下(包括适用于长期基线实验的典型条件),对估计矫正项的影响很有用,而物质效应很重要。在这些情况下,效果似乎很小,并且表明如果发现明显的破坏效应,它们将是由于对腐蚀项的不可估量的贡献所致。

We consider the decoherence effects in the propagation of active neutrinos due to the non-forward neutrino scattering processes in a matter background composed of electrons and nucleons. We calculate the contribution to the imaginary part of the neutrino self-energy arising from such processes. Since the initial neutrino state is depleted but does not actually disappear (the initial neutrino transitions into a neutrino of a different flavor but does not decay) those processes should be associated with decoherence effects that cannot be described in terms of the coherent evolution of the state vector. Based on the formalism developed in our previous work for treating the non-forward scattering processes using the notion of the stochastic evolution of the state, we identify the jump operators, as used in the context of the master or Lindblad equation, in terms of the results of the the calculation of the non-forward neutrino scattering contribution to the imaginary part of the neutrino self-energy. As a guide to estimating the decoherence effects in situations of practical interest we give explicit formulas for the decoherence terms for different background conditions, and point out some of the salient features in particular the neutrino energy dependence. To establish contact wih previous works in which the decoherence terms are treated as phenomenological parameters, we consider the solution to the evolution equation in the two-generation case. We give formulas that are useful for estimating the effects of the decoherence terms under various conditions and environments, including the typical conditions applicable to long baseline experiments, where matter effects are important. In those contexts the effects appear to be small, and indicative that if significant decoherence effects were to be found they would be due to non-standard contributions to the decoherence terms.

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