Constraining Early Dark Energy with Large-Scale Structure
Mikhail M. Ivanov, Evan McDonough, J. Colin Hill, Marko Simonovi\'c,, Michael W. Toomey, Stephon Alexander, Matias Zaldarriaga

TL;DR
This study uses large-scale structure data, including the full-shape power spectrum from BOSS, to tightly constrain early dark energy models, finding they cannot resolve the Hubble tension with current data and highlighting the potential of future surveys.
Contribution
First analysis of EDE constraints using EFT-based full-shape BOSS likelihood, demonstrating stronger bounds and the potential of upcoming surveys to further test EDE models.
Findings
EDE contribution limited to less than 7.2% of energy density (95% CL)
Hubble constant constrained to approximately 68.5 km/s/Mpc
Current data exclude EDE as a solution to the Hubble tension
Abstract
An axion-like field comprising of the energy density of the universe near matter-radiation equality is a candidate to resolve the Hubble tension; this is the "early dark energy" (EDE) model. However, as shown in Hill et al. (2020), the model fails to simultaneously resolve the Hubble tension and maintain a good fit to both cosmic microwave background (CMB) and large-scale structure (LSS) data. Here, we use redshift-space galaxy clustering data to sharpen constraints on the EDE model. We perform the first EDE analysis using the full-shape power spectrum likelihood from the Baryon Oscillation Spectroscopic Survey (BOSS), based on the effective field theory (EFT) of LSS. The inclusion of this likelihood in the EDE analysis yields a tighter error bar on compared to primary CMB data alone, yielding km/s/Mpc ( CL). In addition, we…
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