Abstract

Axion-CMB scenario is an interesting possibility to explain the temperature anisotropy of the cosmic microwave background (CMB) by primordial fluctuations of the QCD axion \cite{Iso:2020pzv}. In this scenario, fluctuations of radiations are generated by an energy exchange between axions and radiations, which results in the correlation between the primordial axion fluctuations and the CMB anisotropies. Consequently, the cosmological observations stringently constrain a model of the axion and the early history of the universe. In particular, we need a large energy fraction $\Omega_A^{}$ of the axion at the QCD phase transition, but it must become tiny at the present universe to suppress the isocurvature power spectrum. One of natural cosmological scenarios to realize such a situation is the thermal inflation which can sufficiently dilute the axion abundance. Thermal inflation occurs in various models. In this paper, we focus on a classically conformal (CC) $B$-$L$ model with a QCD axion. In this model, the early universe undergoes a long supercooling era of the $B$-$L$ and electroweak symmetries, and thermal inflation naturally occurs. Thus it can be a good candidate for the axion-CMB scenario. But the axion abundance at the QCD transition is shown to be insufficient in the original CC $B$-$L$ model. To overcome the situation, we extend the model by introducing $N$ scalar fields $S$ (either massive or massless) and consider a novel cosmological history such that the $O(N)$ and the $B$-$L$ sectors evolve almost separately in the early universe. We find that all the necessary conditions for the axion-CMB scenario can be satisfied in some parameter regions for massless $S$ fields, typically $N\sim 10^{19}$ and the mass of $B$-$L$ gauge boson around $5-10$ TeV.

Highlights

  • Anisotropy of the cosmic microwave background (CMB) is one of the most fascinating subject in the particle cosmology since it is generated at an early stage of the history of the Universe and possibly related to the physics beyond the Standard Model (BSM)

  • IV, we focus on a specific particle physics model of the axion-CMB scenario, a classically conformal (CC) B − L model since the model predicts thermal inflation below TQCD

  • We have investigated a possibility of the axion-CMB scenario in particle physics models with classical conformality (CC)

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Summary

INTRODUCTION

Anisotropy of the cosmic microwave background (CMB) is one of the most fascinating subject in the particle cosmology since it is generated at an early stage of the history of the Universe and possibly related to the physics beyond the Standard Model (BSM). The current observational data such as Planck 2018 [1,2,3] tells us that the temperature fluctuation is almost scale invariant and adiabatic, which favors inflation models by a single scalar field It is is not the unique scenario for explaining the CMB anisotropy. We will consider the classically conformal B − L model [29,30,31,32] with a QCD axion and its extension with OðNÞ scalar fields S. Our analysis shows that the massless case can satisfy all the necessary conditions for the model to be phenomenologically viable

SCHEMATIC PICTURE
AXION-CMB SCENARIO
PARTICLE PHYSICS MODELS OF AXION-CMB SCENARIO
Evolution of hS2i and hhi
Evolution of T
Dilution factor by thermal inflation
Dilution of axions
Dilution of initial abundance of S
Massless OðNÞ sector
Evolution of hhi
Various quantities at TQCD
Productions of S after thermal inflation
CONCLUSIONS
T2xK2ðxÞ2
Boltzmann equations
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