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Physics from solar neutrinos in dark matter direct detection experiments.

机译:太阳中微子在暗物质中的物理学直接探测实验。

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摘要

The next generation of dark matter direct detection experiments will be sensitive to both coherent neutrino-nucleus and neutrino-electron scattering. This will enable them to explore aspects of solar physics, perform the lowest energy measurement of the weak angle to date, and probe contributions from new theories with light mediators. In this article, we compute the projected nuclear and electron recoil rates expected in several dark matter direct detection experiments due to solar neutrinos, and use these estimates to quantify errors on future measurements of the neutrino fluxes, weak mixing angle and solar observables, as well as to constrain new physics in the neutrino sector. Our analysis shows that the combined rates of solar neutrino events in second generation experiments (SuperCDMS and LZ) can yield a measurement of the pp flux to 2.5% accuracy via electron recoil, and slightly improve the 8B flux determination. Assuming a low-mass argon phase, projected tonne-scale experiments like DARWIN can reduce the uncertainty on both the pp and boron-8 neutrino fluxes to below 1%. Finally, we use current results from LUX, SuperCDMS and CDMSlite to set bounds on new interactions between neutrinos and electrons or nuclei, and show that future direct detection experiments can be used to set complementary constraints on the parameter space associated with light mediators.
机译:下一代暗物质直接检测实验将对相干中微子核和中微子电子散射都敏感。这将使他们能够探索太阳物理学的各个方面,对迄今为止的弱角进行最低的能量测量,并利用光介体来探索新理论的贡献。在本文中,我们计算了由于太阳中微子而在几个暗物质直接探测实验中预期的预计核和电子反冲率,并使用这些估计值来量化未来中微子通量,弱混合角和太阳可观测物的测量误差以限制中微子领域的新物理学。我们的分析表明,在第二代实验(SuperCDMS和LZ)中太阳中微子事件的综合发生率可以通过电子反冲将pp通量测量为2.5%的准确度,并略微提高了8B通量的确定性。假设氩气质量低,预计的吨级实验(如DARWIN)可以将pp和硼8中微子通量的不确定性降低至1%以下。最后,我们使用LUX,SuperCDMS和CDMSlite的当前结果来设定中微子与电子或原子核之间新相互作用的界限,并表明未来的直接检测实验可用于设置与光介体相关的参数空间的互补约束。

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