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The status of the study of solar CNO neutrinos in the Borexino experiment

机译:太阳硼化钠中微子的研究在Borexino实验中的地位

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摘要

Although less than 1% of solar energy is generated in the CNO cycle, it plays a critical role in astrophysics, since this cycle is the primary source of energy in certain more massive stars and at later stages of evolution of solar-type stars. Electron neutrinos are produced in the CNO cycle reactions. These neutrinos may be detected by terrestrial neutrino detectors. Various solar models with different abundances of elements heavier than helium predict different CNO neutrino fluxes. A direct measurement of the CNO neutrino flux could help distinguish between these models and solve several other astrophysical problems. No CNO neutrinos have been detected directly thus far, and the best upper limit on their flux was set in the Borexino experiment. The work on reducing the background in the region of energies of CNO neutrinos (up to 1.74 MeV) and developing novel data analysis methods is presently under way. These efforts may help detect the CNO neutrino flux in the Borexino experiment at the level predicted by solar models.
机译:尽管在CNO循环中不到1%的太阳能产生,但它在天体物理学中起着至关重要的作用,因为该循环是某些更大质量恒星以及太阳型恒星演化后期的主要能量来源。在CNO循环反应中产生电子中微子。这些中微子可以被地面中微子探测器探测到。具有比氦重得多的元素丰度的各种太阳模型预测了不同的CNO中微子通量。 CNO中微子通量的直接测量可以帮助区分这些模型,并解决其他一些天体物理学问题。到目前为止,尚未直接检测到CNO中微子,并且在Borexino实验中设定了其通量的最佳上限。目前正在进行减少CNO中微子能量区域(最高1.74 MeV)的本底和开发新型数据分析方法的工作。这些努力可能有助于在Borexino实验中以太阳模型预测的水平检测CNO中微子通量。

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