论文标题
JUSL的暗物质搜索实验的中子背景模拟
Simulation of neutron background for a dark matter search experiment at JUSL
论文作者
论文摘要
暗物质搜索实验需要低到超低辐射背景才能运行。了解辐射背景的性质非常重要,包括有关导致其来源的知识。有时,对背景的评估非常适合为实验选择的站点以及实验配置。提议在印度的Jaduguda地下科学实验室(JUSL)进行暗物质搜索实验。该实验室将位于现有的矿山内,其中有555 m的垂直岩石覆盖层。由$(α,n)$反应产生的中子,岩石中天然放射性杂质的自发裂变以及宇宙muon诱导的反应也被视为可能影响实验的灵敏度和结果的主要背景。在这项工作中,进行基于Geant4的模拟是为了理解由于周围岩石的自然放射性和宇宙基因中子背景而引起的放射性中子背景,以及由于深度穿透宇宙的穆斯与岩石的相互作用而引起的。获得洞穴中的MUON通量为$ 4.49(\ pm0.25)\ times10^{ - 7} $ cm $ $^{ - 2} $ s $ s $ s $^{ - 1} $,放射性和cesmogenic中性中子的通量超过了1 mev,以获得1 mev的含量。 $ 5.75(\ pm0.58)\ times10^{ - 6} $ cm $^{ - 2} $ s $^{ - 1} $和$ 7.25(\ pm0.65)\ times 10^{ - 9} $ cm $ cm $^{ - 2} $ cm $^{ - 2} $ s $ s $ s $^{ - 1} $。所获得的值与Boulby Mine的Dama,Wipp和Dark Matter实验进行的估计值和测量值可比。还研究了不同屏蔽材料的有效性,以获得JUSL的暗物质搜索实验的最佳中子背景降低。我们还估计了基于CSI的检测器对估计中子背景的JUSL弱相互作用的大量粒子(WIMP)暗物质搜索的敏感性。
Dark matter search experiments demand low to ultralow radiation background to operate. It is very important to understand the nature of the radiation background including knowledge about the sources contributing to it. Sometimes, evaluation of the background becomes very specific to the site chosen for the experiment, and also to the experimental configuration. A dark matter search experiment is proposed to be set up at the Jaduguda Underground Science Laboratory (JUSL) in India. The laboratory will be located inside an existing mine with 555 m of vertical rock overburden. Neutrons produced from $(α,n)$ reactions, spontaneous fission of natural radioactive impurities in the rocks, and also from cosmic muon induced reactions are considered as the main background which can affect the sensitivity and outcome of the experiment. In this work, simulations based on GEANT4 are done to understand both the radiogenic neutron background caused by natural radioactivity of the surrounding rock and the cosmogenic neutron background due to interaction of the deeply penetrating cosmic muons with the rock. The muon flux in the cavern is obtained to be $4.49(\pm0.25)\times10^{-7} $cm$^{-2}$s$^{-1}$ and the fluxes of radiogenic and cosmogenic neutrons above an energy threshold of 1 MeV in the cavern are obtained to be $5.75(\pm0.58)\times10^{-6}$cm$^{-2}$s$^{-1}$ and $7.25(\pm0.65)\times 10^{-9}$ cm$^{-2}$s$^{-1}$ respectively. The values obtained are comparable with estimates and measurements done for DAMA, WIPP and dark matter experiments at Boulby mine. The effectiveness of different shielding materials are also investigated to obtain the best possible neutron background reduction for a dark matter search experiment at JUSL. We also estimate the sensitivity of a CsI based detector for Weakly Interacting Massive Particle (WIMP) dark matter search at JUSL considering the estimated neutron background.