论文标题

精神 - 结构形成的有效理论:黑暗声学振荡对宇宙黎明的影响

ETHOS -- An Effective Theory of Structure Formation: Impact of Dark Acoustic Oscillations on Cosmic Dawn

论文作者

Muñoz, Julian B., Bohr, Sebastian, Cyr-Racine, Francis-Yan, Zavala, Jesús, Vogelsberger, Mark

论文摘要

宇宙黎明期间21厘米氢系的即将到来的数据($ z \ sim 10-30 $)将彻底改变我们对第一个星系天体物理学的理解。在这里,我们介绍了一个案例研究,介绍了如何利用相同的测量值以在小尺度上了解暗物质(DM)的性质。为了关注有效的结构形成理论(ETHOS)范式,我们运行了一套涵盖广泛的DM微物理学的模拟,将$ n $体体模拟的输出连接到专用的21 cm模拟,以预测整个宇宙黎明中21厘米信号的演变。我们发现,针对全局信号和21 cm功率谱的观测值对我们研究的所有精神模型都敏感,并且如果抑制波数小于$ k \ \ $ k \ 300 \,H/$ MPC,即使使用现象学模型进行反馈,也可以将它们与CDM区分开。这是比当前受到其他数据集(包括Lyman-$α$ Forest)的限制的数量级。此外,如果前瞻性21厘米检测证实了小尺度上的功率不足,我们表明具有强烈的深色声学振荡的精神模型可以与温暖的暗物质的纯抑制作用区分,从而显示21 cm数据的功率以了解最小物理尺度上DM的行为。

Upcoming data of the 21-cm hydrogen line during cosmic dawn ($z\sim 10-30$) will revolutionize our understanding of the astrophysics of the first galaxies. Here we present a case study on how to exploit those same measurements to learn about the nature of dark matter (DM) at small scales. Focusing on the Effective Theory of Structure Formation (ETHOS) paradigm, we run a suite of simulations covering a broad range of DM microphysics, connecting the output of $N$-body simulations to dedicated 21-cm simulations to predict the evolution of the 21-cm signal across the entire cosmic dawn. We find that observatories targeting both the global signal and the 21-cm power spectrum are sensitive to all ETHOS models we study, and can distinguish them from CDM if the suppression wavenumber is smaller than $k\approx 300\, h/$Mpc, even when accounting for feedback with a phenomenological model. This is an order of magnitude smaller comoving scales than currently constrained by other data sets, including the Lyman-$α$ forest. Moreover, if a prospective 21-cm detection confirmed a deficiency of power at small scales, we show that ETHOS models with strong dark acoustic oscillations can be discriminated from the pure suppression of warm dark matter, showing the power of 21-cm data to understand the behavior of DM at the smallest physical scales.

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