论文标题

使用反应堆抗神经纤维和ISMRAN设置的主动性中微子混合约束

Active-sterile neutrino mixing constraint using reactor antineutrinos with the ISMRAN set-up

论文作者

Behera, S. P., Mishra, D. K., Pant, L. M.

论文摘要

在这项工作中,我们介绍了对反应堆抗神经(ISMRAN)实验设置的敏感性与印度闪烁体基质的敏感性。在本文中,我们考虑了使用单个检测器的电子抗毒剂诱导的事件的测量,该探测器可以放置在一个位置或在近距离位置与给定反应堆芯之间移动。在后来的情况下提取的结果与反应器抗中性谱和探测器相关的系统不确定性的理论预测无关。我们的分析表明,与仅在单个检测器位置下测量的测量值相比,从近距离检测器位置和近距离检测器位置的组合进行的测量结果得到显着改善。发现发现近距离检测器位置的最佳组合是从100 mw $ _ {th} $ power dhruva研究反应堆核心分别为7 m和9 m,对于它,ISMRAN设置可以在1.4 $ ev^{2} \ ev {2} \leqΔm^{2} _ {41} $的范围内排除。抗肿瘤异常区域以及当前的活跃中微子振荡参数的最佳拟合点。在这些探测器位置的组合下,ISMRAN设置可以使用95 $ \%$置信度观察活跃的无菌中微子振荡,但前提是$ \ sin^{2}2θ_{14} \ geq 0.09 $ at $Δm^{2)通过将检测器分别与紧凑型原型快速育种反应堆(PFBR)设施相距近距离和17 m的近距离,可以在同一暴露下将活动性中微子混合敏感性在同一暴露下提高约22 \%,该探测器的较高热力功率为1250 mw $ _ {th} $。

In this work, we present an analysis of the sensitivity to the active-sterile neutrino mixing with the Indian Scintillator Matrix for Reactor Anti-Neutrino (ISMRAN) experimental set-up at very short baseline. In this article, we have considered the measurement of electron antineutrino induced events employing a single detector which can be placed either at a single position or moved between near and far positions from the given reactor core. Results extracted in the later case are independent of the theoretical prediction of the reactor anti-neutrino spectrum and detector related systematic uncertainties. Our analysis shows that the results obtained from the measurement carried out at a combination of the near and far detector positions are improved significantly at higher $Δm^{2}_{41}$ compared to the ones obtained with the measurement at a single detector position only. It is found that the best possible combination of near and far detector positions from a 100 MW$_{th}$ power DHRUVA research reactor core are 7 m and 9 m, respectively, for which ISMRAN set-up can exclude in the range 1.4 $eV^{2} \leq Δm^{2}_{41} \leq$ 4.0 $eV^{2}$ of reactor antineutrino anomaly region along with the present best-fit point of active-sterile neutrino oscillation parameters. At those combinations of detector positions, the ISMRAN set-up can observe the active sterile neutrino oscillation with a 95$\%$ confidence level provided that $\sin^{2}2θ_{14}\geq 0.09$ at $Δm^{2}_{41}$ = 1 eV$^{2}$ for an exposure of 1 ton-yr. The active-sterile neutrino mixing sensitivity can be improved by about 22\% at the same exposure by placing the detector at near and far distances of 15 m and 17 m, respectively, from the compact proto-type fast breeder reactor (PFBR) facility which has a higher thermal power of 1250 MW$_{th}$.

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