The $N_{\rm eff}$ at CMB challenges $U(1)_X$ light gauge boson scenarios

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Hauptverfasser: Ghosh, Dilip Kumar, Ghosh, Purusottam, Jeesun, Sk, Srivastava, Rahul
Format: Preprint
Veröffentlicht: 2024
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author Ghosh, Dilip Kumar
Ghosh, Purusottam
Jeesun, Sk
Srivastava, Rahul
author_facet Ghosh, Dilip Kumar
Ghosh, Purusottam
Jeesun, Sk
Srivastava, Rahul
contents The relativistic degrees of freedom ($N_{\rm eff}$) is one of the crucial cosmological parameters. The precise measurement of $N_{\rm eff}$ at the time of cosmic microwave background formation, by Planck 2018 can be used to understand the new fundamental interactions, in particular involving light mediators. Presence of any new particle with sufficient energy density and sizeable interactions with Standard Model particles at the temperature around $\sim$ MeV can significantly alter the neutrino decoupling and hence $N_{\rm eff}$. Thus the bound on $N_{\rm eff}$ can place stringent constraints on various beyond Standard Model paradigms involving light particles. $U(1)_X$ models are among such scenarios and are widely studied in several aspects. In this work, we consider several popular $U(1)_X$ models with light $Z'$ boson like $U(1)_{B-L}$, $U(1)_{B - 3L_i}$, $U(1)_{B_i - 3 L_j}$, $U(1)_{L_i - L_j}$; $i,j =1,2,3$ being the flavour indices and study their impact on $N_{\rm eff}$. We also examine the constraints from ground based experiments like Xenon1T, Borexino, trident, etc. Our analysis shows that for light mass $M_{Z'} \lesssim \mathcal{O} (\rm{MeV})$ the $N_{\rm eff}$ provides the most stringent constraints on the $Z'$ mass and coupling, far exceeding the existing constraints from other experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2404_10077
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The $N_{\rm eff}$ at CMB challenges $U(1)_X$ light gauge boson scenarios
Ghosh, Dilip Kumar
Ghosh, Purusottam
Jeesun, Sk
Srivastava, Rahul
High Energy Physics - Phenomenology
The relativistic degrees of freedom ($N_{\rm eff}$) is one of the crucial cosmological parameters. The precise measurement of $N_{\rm eff}$ at the time of cosmic microwave background formation, by Planck 2018 can be used to understand the new fundamental interactions, in particular involving light mediators. Presence of any new particle with sufficient energy density and sizeable interactions with Standard Model particles at the temperature around $\sim$ MeV can significantly alter the neutrino decoupling and hence $N_{\rm eff}$. Thus the bound on $N_{\rm eff}$ can place stringent constraints on various beyond Standard Model paradigms involving light particles. $U(1)_X$ models are among such scenarios and are widely studied in several aspects. In this work, we consider several popular $U(1)_X$ models with light $Z'$ boson like $U(1)_{B-L}$, $U(1)_{B - 3L_i}$, $U(1)_{B_i - 3 L_j}$, $U(1)_{L_i - L_j}$; $i,j =1,2,3$ being the flavour indices and study their impact on $N_{\rm eff}$. We also examine the constraints from ground based experiments like Xenon1T, Borexino, trident, etc. Our analysis shows that for light mass $M_{Z'} \lesssim \mathcal{O} (\rm{MeV})$ the $N_{\rm eff}$ provides the most stringent constraints on the $Z'$ mass and coupling, far exceeding the existing constraints from other experiments.
title The $N_{\rm eff}$ at CMB challenges $U(1)_X$ light gauge boson scenarios
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2404.10077