论文标题

早期黑能的微物理学

Microphysics of Early Dark Energy

论文作者

Sabla, Vivian I., Caldwell, Robert R.

论文摘要

早期的暗能量(EDE)依靠标量场动力学来解决哈勃张力,通过增强预聚合长度尺度,从而提高哈勃群的CMB扣除值与后期宇宙探针一致。然而,标量场微物理学对线性扰动光谱的附带效应似乎排除了完全令人满意的解决方案。如果不包括后期的宇宙,就不会提高$ h_0 $,而“ $ s_8 $ tension”是结构增长参数的早期和晚期测量之间的差异,这是加剧的。如果EDE不是标量字段怎么办?在这里,我们研究了在压力和能量密度波动之间构成关系中编码的不同微物理学是否可以缓解这些紧张局势。我们表明,具有各向异性音速的EDE可以软化$ H_0 $和$ S_8 $张力,同时仍可以为CMB数据提供质量拟合。 CMB-S4实验的未来观察结果可能能够以4σ$级别区分基本的微物理学,从而测试标量场或某些更丰富的物理学。

Early Dark Energy (EDE) relies on scalar field dynamics to resolve the Hubble tension, by boosting the pre-recombination length scales and thereby raising the CMB-inferred value of the Hubble constant into agreement with late universe probes. However, the collateral effect of scalar field microphysics on the linear perturbation spectra appears to preclude a fully satisfactory solution. $H_0$ is not raised without the inclusion of a late universe prior, and the "$S_8$-tension", a discrepancy between early- and late-universe measurements of the structure growth parameter, is exacerbated. What if EDE is not a scalar field? Here, we investigate whether different microphysics, encoded in the constitutive relationships between pressure and energy density fluctuations, can relieve these tensions. We show that EDE with an anisotropic sound speed can soften both the $H_0$ and $S_8$ tensions while still providing a quality fit to CMB data. Future observations from the CMB-S4 experiment may be able to distinguish the underlying microphysics at the $4σ$ level, and thereby test whether a scalar field or some richer physics is at work.

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