论文标题
在最佳实验中搜索向无菌状态的电子中微子过渡
A Search for Electron Neutrino Transitions to Sterile States in the BEST Experiment
论文作者
论文摘要
Baksan关于无菌过渡的实验(最佳)探测了凝胶异常及其与活性和无菌中微子之间振荡的可能连接。基于Sage实验的甘露中微子望远镜(GGNT)技术,最好采用两个液体GA目标区域来探索仪表尺度中的中微子振荡。短规模的振荡可能会在两个区域内的$^{71} $ GE生产率中产生赤字,以及区域之间的可能差差。 从2019年7月5日至10月13日,两区目标暴露于主要是单一单位的,3.4-MCI $^{51} $ CR NETRINO源10次,总共20个独立的$^{71} $ GE提取来自两个GA目标。从2019年7月到2020年3月,从中微子来源测量了$^{71} $ GE的生产率。在这些测量结束时,柜台充满了$^{71} $ ge掺杂的气体并在2020年11月进行了校准。在本文中,最佳的无菌中性振动实验的结果是详细介绍的。测量的$^{71} $ ge生产率与内部目标量和外部目标量的预测率的比率是从已知的中微子捕获横截面计算得出的。在两个区域中都发现了相对于预测值的可比缺陷,而$4σ$与统一的偏差符合先前报道的凝胶异常。如果在中微子振荡的背景下进行解释,则缺陷可以提供最佳拟合振荡参数为$δm^2 = 3.3^{+\ fty} _ { - 2.3} $ ev $^2 $和sin $^2 $和sin $^2θ= 0.42 = 0.42^{+0.15} $ {+0.15]由一个令人惊讶的大混合角控制。
The Baksan Experiment on Sterile Transitions (BEST) probes the gallium anomaly and its possible connections to oscillations between active and sterile neutrinos. Based on the Gallium-Germanium Neutrino Telescope (GGNT) technology of the SAGE experiment, BEST employs two zones of liquid Ga target to explore neutrino oscillations on the meter scale. Oscillations on this short scale could produce deficits in the $^{71}$Ge production rates within the two zones, as well as a possible rate difference between the zones. From July 5th to October 13th 2019, the two-zone target was exposed to a primarily monoenergetic, 3.4-MCi $^{51}$Cr neutrino source 10 times for a total of 20 independent $^{71}$Ge extractions from the two Ga targets. The $^{71}$Ge production rates from the neutrino source were measured from July 2019 to March 2020. At the end of these measurements, the counters were filled with $^{71}$Ge doped gas and calibrated during November 2020. In this paper, results from the BEST sterile neutrino oscillation experiment are presented in details. The ratio of the measured $^{71}$Ge production rates to the predicted rates for the inner and the outer target volumes are calculated from the known neutrino capture cross section. Comparable deficits in the measured ratios relative to predicted values are found for both zones, with the $4 σ$ deviations from unity consistent with the previously reported gallium anomaly. If interpreted in the context of neutrino oscillations, the deficits give best fit oscillation parameters of $Δm^2=3.3^{+\infty}_{-2.3}$ eV$^2$ and sin$^2 2θ=0.42^{+0.15}_{-0.17}$, consistent with $ν_e \rightarrow ν_s$ oscillations governed by a surprisingly large mixing angle.