论文标题

天体物理媒体中的暗物质散射:集体效果

Dark matter scattering in astrophysical media: collective effects

论文作者

DeRocco, William, Galanis, Marios, Lasenby, Robert

论文摘要

众所周知,恒星有可能成为出色的暗物质探测器。恒星内散射的深色物质可能导致一系列观察性特征,包括出色的加热,黑洞形成和改良的热传输。为了对这种现象做出强大的预测,有必要计算恒星内暗物质的散射速率。正如我们在本文中所显示的那样,对于足够小的动量转移,这需要考虑到密集的恒星培养基中的集体效果。这些影响在许多以前的治疗中都被忽略了。我们演示了如何系统地合并它们,并表明它们可以参数增强或抑制暗物质散射率,这取决于暗物质夫妇如何与标准模型。我们表明,结果,集体效应可以显着改变对诸如白矮星和中子星等紧凑物体的观察的潜在发现或排除范围。虽然效果对于通过轻介质耦合的暗物质耦合更为明显,但我们表明,即使是通过繁重的介体耦合的暗物质耦合,散射速率也可能因其对暗物质质量的幼稚值<〜100 meV而有所不同。我们还说明集体效应对于更稀释的介质(例如太阳核心)中的暗物质散射很重要。我们的结果表明,有必要系统地在各种Astroparpicle环境中进行集体效应。为了促进这一点,我们为各种不同媒体提供了中等内部自我能力的表达式,这些媒体适用于许多其他感兴趣的过程(例如粒子产生)。

It is well-known that stars have the potential to be excellent dark matter detectors. Infalling dark matter that scatters within stars could lead to a range of observational signatures, including stellar heating, black hole formation, and modified heat transport. To make robust predictions for such phenomena, it is necessary to calculate the scattering rate for dark matter inside the star. As we show in this paper, for small enough momentum transfers, this requires taking into account collective effects within the dense stellar medium. These effects have been neglected in many previous treatments; we demonstrate how to incorporate them systematically, and show that they can parametrically enhance or suppress dark matter scattering rates depending on how dark matter couples to the Standard Model. We show that, as a result, collective effects can significantly modify the potential discovery or exclusion reach for observations of compact objects such as white dwarfs and neutron stars. While the effects are more pronounced for dark matter coupling through a light mediator, we show that even for dark matter coupling via a heavy mediator, scattering rates can differ by orders of magnitude from their naive values for dark matter masses <~ 100 MeV. We also illustrate how collective effects can be important for dark matter scattering in more dilute media, such as the Solar core. Our results demonstrate the need to systematically incorporate collective effects in a wide range of astroparticle contexts; to facilitate this, we provide expressions for in-medium self-energies for a variety of different media, which are applicable to many other processes of interest (such as particle production).

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