Skip to main content

Atacama Cosmology Telescope: Constraints on prerecombination early dark energy

Publication ,  Journal Article
Hill, JC; Calabrese, E; Aiola, S; Battaglia, N; Bolliet, B; Choi, SK; Devlin, MJ; Duivenvoorden, AJ; Dunkley, J; Ferraro, S; Gallardo, PA ...
Published in: Physical Review D
June 15, 2022

The early dark energy (EDE) scenario aims to increase the value of the Hubble constant (H0) inferred from cosmic microwave background (CMB) data over that found in the standard cosmological model (ΛCDM), via the introduction of a new form of energy density in the early Universe. The EDE component briefly accelerates cosmic expansion just prior to recombination, which reduces the physical size of the sound horizon imprinted in the CMB. Previous work has found that nonzero EDE is not preferred by Planck CMB power spectrum data alone, which yield a 95% confidence level (C.L.) upper limit fEDE<0.087 on the maximal fractional contribution of the EDE field to the cosmic energy budget. In this paper, we fit the EDE model to CMB data from the Atacama Cosmology Telescope (ACT) data release 4. We find that a combination of ACT, large-scale Planck TT (similar to WMAP), Planck CMB lensing, and BAO data prefers the existence of EDE at >99.7% C.L.: fEDE=0.091-0.036+0.020, with H0=70.9-2.0+1.0 km/s/Mpc (both 68% C.L.). From a model-selection standpoint, we find that EDE is favored over ΛCDM by these data at roughly 3σ significance. In contrast, a joint analysis of the full Planck and ACT data yields no evidence for EDE, as previously found for Planck alone. We show that the preference for EDE in ACT alone is driven by its TE and EE power spectrum data. The tight constraint on EDE from Planck alone is driven by its high-ℓ TT power spectrum data. Understanding whether these differing constraints are physical in nature, due to systematics, or simply a rare statistical fluctuation is of high priority. The best-fit EDE models to ACT and Planck exhibit coherent differences across a wide range of multipoles in TE and EE, indicating that a powerful test of this scenario is anticipated with near-future data from ACT and other ground-based experiments.

Duke Scholars

Published In

Physical Review D

DOI

EISSN

2470-0029

ISSN

2470-0010

Publication Date

June 15, 2022

Volume

105

Issue

12
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Hill, J. C., Calabrese, E., Aiola, S., Battaglia, N., Bolliet, B., Choi, S. K., … Xu, Z. (2022). Atacama Cosmology Telescope: Constraints on prerecombination early dark energy. Physical Review D, 105(12). https://doi.org/10.1103/PhysRevD.105.123536
Hill, J. C., E. Calabrese, S. Aiola, N. Battaglia, B. Bolliet, S. K. Choi, M. J. Devlin, et al. “Atacama Cosmology Telescope: Constraints on prerecombination early dark energy.” Physical Review D 105, no. 12 (June 15, 2022). https://doi.org/10.1103/PhysRevD.105.123536.
Hill JC, Calabrese E, Aiola S, Battaglia N, Bolliet B, Choi SK, et al. Atacama Cosmology Telescope: Constraints on prerecombination early dark energy. Physical Review D. 2022 Jun 15;105(12).
Hill, J. C., et al. “Atacama Cosmology Telescope: Constraints on prerecombination early dark energy.” Physical Review D, vol. 105, no. 12, June 2022. Scopus, doi:10.1103/PhysRevD.105.123536.
Hill JC, Calabrese E, Aiola S, Battaglia N, Bolliet B, Choi SK, Devlin MJ, Duivenvoorden AJ, Dunkley J, Ferraro S, Gallardo PA, Gluscevic V, Hasselfield M, Hilton M, Hincks AD, HloŽek R, Koopman BJ, Kosowsky A, La Posta A, Louis T, Madhavacheril MS, McMahon J, Moodley K, Naess S, Natale U, Nati F, Newburgh L, Niemack MD, Page LA, Partridge B, Qu FJ, Salatino M, Schillaci A, Sehgal N, Sherwin BD, Sifón C, Spergel DN, Staggs ST, Storer ER, Van Engelen A, Vavagiakis EM, Wollack EJ, Xu Z. Atacama Cosmology Telescope: Constraints on prerecombination early dark energy. Physical Review D. 2022 Jun 15;105(12).

Published In

Physical Review D

DOI

EISSN

2470-0029

ISSN

2470-0010

Publication Date

June 15, 2022

Volume

105

Issue

12