论文标题

潜在客户的物理机会

Physics Opportunities with PROSPECT-II

论文作者

Andriamirado, M., Balantekin, A. B., Bass, C. D., Bergeron, D. E., Bernard, E., Bowden, N. S., Bryan, C. D., Carr, R., Classen, T., Conant, A. J., Deichert, G., Delgado, A., Diwan, M. V., Dolinski, M. J., Erickson, A., Foust, B. T., Gaison, J. K., Galindo-Uribari, A., Gilbert, C. E., Gokhale, S., Grant, C., Hans, S., Hansell, A. B., Heeger, K. M., Heffron, B., Jaffe, D. E., Jayakumar, S., Ji, X., Jones, D. C., Koblanski, J., Kunkle, P., Kyzylova, O., Lane, C. E., Langford, T. J., LaRosa, J., Littlejohn, B. R., Lu, X., Maricic, J., Mendenhall, M. P., Meyer, A. M., Milincic, R., Mueller, P. E., Mumm, H. P., Napolitano, J., Neilson, R., Nikkel, J. A., Nour, S., Palomino, J. L., Pushin, D. A., Qian, X., Roca, C., Rosero, R., Searles, M., Surukuchi, P. T., Sutanto, F., Tyra, M. A., Varner, R. L., Venegas-Vargas, D., Weatherly, P. B., Wilhelmi, J., Woolverton, A., Yeh, M., Zhang, C., Zhang, X.

论文摘要

前景实验通过从富集的紧凑反应器核心和基于独特的光谱扭曲的富集的紧凑反应器中微子振动搜索进行高分辨率光谱测量来实质性地解决了原始的“反应器抗神经异常”。但是随着领域的发展,当前的短基线(SBL)景观支持许多复杂的现象学解释,确定了需要解决情况的补充实验方法。 尽管包括前景在内的全球SBL反应堆实验套件已经探测了大部分无菌中微子参数空间,但仍有一个高于1 eV $^2 $的区域,但仍未得到解决。 Best Best的最新结果确认了凝固性异常,其意义增加到$ \ sim5σ$,无菌中微子提供了对此异常的可能解释。另外,导致小型低能过量的电子样特征的微酮排除并不能消除无菌中微子作为解释的可能性。高度精确的光谱测量值特别关注将反应堆作为超级模型物理和应用的中微子来源,仍然可以发挥作用。 这些最近的结果创造了一个令人困惑的景观,这需要新数据来消除看似矛盾的测量。为了直接探测$ \Overlineν_{e} $从高$δm^2 $无菌中微子消失,Prospect Collaboration建议建立升级和改进的检测器Prospect-II。它具有进化检测器设计,可以在一年内构建和部署,并且具有影响力的物理学,只有一个日历年的数据年度。

The PROSPECT experiment has substantially addressed the original 'Reactor Antineutrino Anomaly' by performing a high-resolution spectrum measurement from an enriched compact reactor core and a reactor model-independent sterile neutrino oscillation search based on the unique spectral distortions the existence of eV$^2$-scale sterile neutrinos would impart. But as the field has evolved, the current short-baseline (SBL) landscape supports many complex phenomenological interpretations, establishing a need for complementary experimental approaches to resolve the situation. While the global suite of SBL reactor experiments, including PROSPECT, have probed much of the sterile neutrino parameter space, there remains a large region above 1 eV$^2$ that remains unaddressed. Recent results from BEST confirm the Gallium Anomaly, increasing its significance to $\sim 5σ$, with sterile neutrinos providing a possible explanation of this anomaly. Separately, the MicroBooNE exclusion of electron-like signatures causing the MiniBooNE low-energy excess does not eliminate the possibility of sterile neutrinos as an explanation. Focusing specifically on the future use of reactors as a neutrino source for beyond-the-standard-model physics and applications, higher-precision spectral measurements still have a role to play. These recent results have created a confusing landscape which requires new data to disentangle the seemingly contradictory measurements. To directly probe $\overlineν_{e}$ disappearance from high $Δm^2$ sterile neutrinos, the PROSPECT collaboration proposes to build an upgraded and improved detector, PROSPECT-II. It features an evolutionary detector design which can be constructed and deployed within one year and have impactful physics with as little as one calendar year of data.

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