论文标题

加速地球的暗物质

Accelerating Earth-Bound Dark Matter

论文作者

McKeen, David, Moore, Marianne, Morrissey, David E., Pospelov, Maxim, Ramani, Harikrishnan

论文摘要

一小部分暗物质可能由粒子物种组成,该物种与标准模型相互作用要比相似质量的典型弱相互作用的巨大粒子(WIMP)更强烈。这种强烈相互作用的暗物质组成部分可以通过与大气中的材料的相互作用和地球在地下探测器之前显着降低其速度,从而避免搜索像WIMP一样的暗物质。这些相同的相互作用还可以增强地球表面附近强烈相互作用的暗物质物种的密度,从而远远超过了局部银河的暗物质密度。在这项工作中,我们提出了两种新的方法,用于基于加速通过散射加速地球预期的人群的强烈相互作用的暗物质。第一种方法是使用地下核加速器梁将环境暗物质种群向下扫描到位于下游的WIMP式检测器中。在第二种技术中,暗物质通过强烈的热源进行了扫描,并用低阈值的暗物质检测器检测到。我们还讨论了强烈相互作用的暗物质的潜在候选者,我们表明该场景可以自然地通过隐藏的费米子耦合到子gev暗光子。

A fraction of the dark matter may consist of a particle species that interacts much more strongly with the Standard Model than a typical weakly interacting massive particle (WIMP) of similar mass. Such a strongly interacting dark matter component could have avoided detection in searches for WIMP-like dark matter through its interactions with the material in the atmosphere and the Earth that slow it down significantly before reaching detectors underground. These same interactions can also enhance the density of a strongly interacting dark matter species near the Earth's surface to well above the local galactic dark matter density. In this work we propose two new methods of detecting strongly interacting dark matter based on accelerating the enhanced population expected in the Earth through scattering. The first approach is to use underground nuclear accelerator beams to upscatter the ambient dark matter population into a WIMP-style detector located downstream. In the second technique, dark matter is upscattered with an intense thermal source and detected with a low-threshold dark matter detector. We also discuss potential candidates for strongly interacting dark matter and we show that the scenario can be naturally realized with a hidden fermion coupled to a sub-GeV dark photon.

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