TY - JOUR
T1 - Constraining the phase shift of relativistic species in DESI BAOs
AU - Whitford, Abbé M.
AU - Rivera-Morales, Hugo
AU - Howlett, Cullan
AU - Vargas-Magaña, Mariana
AU - Fromenteau, Sébastien
AU - Davis, Tamara M.
AU - Pérez-Fernández, Alejandro
AU - de Mattia, Arnaud
AU - Ahlen, Steven
AU - Bianchi, Davide
AU - Brooks, David
AU - Burtin, Etienne
AU - Claybaugh, Todd
AU - de la Macorra, Axel
AU - Doel, Peter
AU - Ferraro, Simone
AU - Forero-Romero, Jaime E.
AU - Gaztañaga, Enrique
AU - Gontcho, Satya Gontcho A.
AU - Gutierrez, Gaston
AU - Juneau, Stephanie
AU - Kehoe, Robert
AU - Kirkby, David
AU - Kisner, Theodore
AU - Koposov, Sergey
AU - Landriau, Martin
AU - Le Guillou, Laurent
AU - Meisner, Aaron
AU - Miquel, Ramon
AU - Prada, Francisco
AU - Pérez-Ràfols, Ignasi
AU - Rossi, Graziano
AU - Sanchez, Eusebio
AU - Schubnell, Michael
AU - Sprayberry, David
AU - Tarlé, Gregory
AU - Weaver, Benjamin Alan
AU - Zarrouk, Pauline
AU - Zou, Hu
N1 - Publisher Copyright:
© 2025 The Author(s). Published by Oxford University Press on behalf of Royal Astronomical Society.
PY - 2025/4/1
Y1 - 2025/4/1
N2 - In the early Universe, neutrinos decouple quickly from the primordial plasma and propagate without further interactions. The impact of free-streaming neutrinos is to create a temporal shift in the gravitational potential that impacts the acoustic waves known as baryon acoustic oscillations (BAOs), resulting in a non-linear spatial shift in the Fourier-space BAO signal. In this work, we make use of and extend upon an existing methodology to measure the phase shift amplitude βφ and apply it to the Dark Energy Spectroscopic Instrument (DESI) Data Release 1 (DR1) BAOs with an anisotropic BAO fitting pipeline. We validate the fitting methodology by testing the pipeline with two publicly available fitting codes applied to highly precise cubic box simulations and realistic simulations representative of the DESI DR1 data. We find further study towards the methods used in fitting the BAO signal will be necessary to ensure accurate constraints on βφ in future DESI data releases. Using DESI DR1, we present individual measurements of the anisotropic BAO distortion parameters and the βφ for the different tracers, and additionally a combined fit to βφ resulting in βφ = 2.7 ± 1.7. After including a prior on the distortion parameters from constraints using Planck we find (Formula presented) suggesting βφ > 0 at 4.3σ significance. This result may hint at a phase shift that is not purely sourced from the standard model expectation for Neff or could be a upwards statistical fluctuation in the measured βφ; this result relaxes in models with additional freedom beyond Lambda-cold dark matter.
AB - In the early Universe, neutrinos decouple quickly from the primordial plasma and propagate without further interactions. The impact of free-streaming neutrinos is to create a temporal shift in the gravitational potential that impacts the acoustic waves known as baryon acoustic oscillations (BAOs), resulting in a non-linear spatial shift in the Fourier-space BAO signal. In this work, we make use of and extend upon an existing methodology to measure the phase shift amplitude βφ and apply it to the Dark Energy Spectroscopic Instrument (DESI) Data Release 1 (DR1) BAOs with an anisotropic BAO fitting pipeline. We validate the fitting methodology by testing the pipeline with two publicly available fitting codes applied to highly precise cubic box simulations and realistic simulations representative of the DESI DR1 data. We find further study towards the methods used in fitting the BAO signal will be necessary to ensure accurate constraints on βφ in future DESI data releases. Using DESI DR1, we present individual measurements of the anisotropic BAO distortion parameters and the βφ for the different tracers, and additionally a combined fit to βφ resulting in βφ = 2.7 ± 1.7. After including a prior on the distortion parameters from constraints using Planck we find (Formula presented) suggesting βφ > 0 at 4.3σ significance. This result may hint at a phase shift that is not purely sourced from the standard model expectation for Neff or could be a upwards statistical fluctuation in the measured βφ; this result relaxes in models with additional freedom beyond Lambda-cold dark matter.
KW - astroparticle physics
KW - cosmological parameters
KW - cosmology: observations
KW - cosmology: theory
KW - large-scale structure of Universe
KW - neutrinos
KW - UKRI
KW - STFC
KW - ST/K00042X/1
KW - ST/P002293/1
KW - ST/R002371/1
KW - ST/S002502/1
KW - ST/R000832/1
UR - http://www.scopus.com/inward/record.url?scp=105001197449&partnerID=8YFLogxK
U2 - 10.1093/mnras/staf394
DO - 10.1093/mnras/staf394
M3 - Article
AN - SCOPUS:105001197449
SN - 0035-8711
VL - 538
SP - 1980
EP - 2000
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
IS - 3
ER -