论文标题

非弹性散射中事件速率和电子后坐力的年度调节直接检测实验

Annual modulation of event rate and electron recoil energy in inelastic scattering direct detection experiments

论文作者

Aboubrahim, Amin, Althueser, Lutz, Klasen, Michael, Nath, Pran, Weinheimer, Christian

论文摘要

在2020年,Xenon1t实验在$ 2 \,$ - $ \,3 \,$ kev的范围内观察到了Electron Racoil Energy $ e_r $的事件。如此多余的可能是由多种来源产生的,例如太阳轴或中微子磁矩,也是由于Xenon原子对暗物质的无弹性散射。然后,电子的后坐力取决于暗颗粒的质量差。在本文中,我们表明,事件速率和电子后坐力的年度调制提供了重要的其他信息,可以区分信号的不同理论解释。为此,我们首先将年度调制的形式主义扩展到电子后坐力,非弹性暗物质散射和电子后坐力能量。然后,我们研究了具有两个狄拉克费米和一个深色光子的具体理论模型。我们考虑了该模型上的所有相关宇宙学和实验约束,并将其应用于Xenon1T和Xenonnt实验,并具有逼真的检测阈值,效率和能量分辨率,拟合了模型的主要物理参数,即质量分配和电子散射横截面。然后,基于这些主要物理参数的简化模型,证明了对信号速率和电子后坐力能量的年度调制的附加信息的歧视能力。与仅限时间调制分析相比,这种更敏感的程序也可以作为其他具有不同暗物质候选者,介体和宇宙学的理论模型的模板。对于$ u(1)$模型,有两个dirac fermions拟合Xenon1t过量和Xenonnt的实验条件,考虑到信号速率和后坐力的年变化,可以更快,更精确地确定自由模型参数。

In 2020 the XENON1T experiment observed an excess of events with an electron recoil energy $E_R$ in the range of $2\,$--$\,3\,$keV. Such an excess can arise from a variety of sources such as solar axions or a neutrino magnetic moment, but also from inelastic scattering of dark matter off the xenon atoms. The recoil energy of the electron then depends on the mass difference of the dark particles. In this paper we show that the annual modulation of both the event rate and the electron recoil energy provide important additional information that allows to distinguish among different theoretical explanations of the signal. To this end, we first extend the formalism of annual modulation to electronic recoils, inelastic dark matter scattering and the electron recoil energy. We then study a concrete theoretical model with two Dirac fermions and a dark photon. We take into account all relevant cosmological and experimental constraints on this model and apply it to the XENON1T and and XENONnT experiments with realistic detection thresholds, efficiencies and energy resolutions, fitting the main physical parameters of the model, i.e. the mass splitting and the electron scattering cross section. The discriminatory power of the additional information from the annual modulation of both the signal rate and the electron recoil energy is then demonstrated for XENONnT with a simplified model based on these main physical parameters. This more sensitive procedure compared to time-only modulation analyses can also serve as a template for other theoretical models with different dark matter candidates, mediators and cosmology. For the $U(1)$ model with two Dirac fermions fitting the XENON1T excess and the experimental conditions of XENONnT, taking into account the annual variation of the signal rate and recoil energy allows for a faster and more precise determination of the free model parameters.

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