Cosmic Trajectories calculation with state of the art lattice QCD equation of state

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Autori principali: Formaggio, Lorenzo, Di Clemente, Francesco, Yadav, Geetika, Drago, Alessandro, Ratti, Claudia
Natura: Preprint
Pubblicazione: 2025
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author Formaggio, Lorenzo
Di Clemente, Francesco
Yadav, Geetika
Drago, Alessandro
Ratti, Claudia
author_facet Formaggio, Lorenzo
Di Clemente, Francesco
Yadav, Geetika
Drago, Alessandro
Ratti, Claudia
contents We compute the full cosmic trajectories of the early Universe across the QCD phase diagram as the plasma cools from $T\simeq500\,$MeV to $30\,$MeV, assuming $β$-equilibrated matter. The trajectories are obtained by simultaneously solving baryon-number, electric-charge, and lepton-asymmetry conservation, closed by a state-of-the-art lattice-QCD equation of state: a fourth-order Taylor expansion in the chemical potentials that merges the latest $(2\!+\!1)$-flavor susceptibilities with charm-quark contributions, thus delivering a consistent $(2\!+\!1\!+\!1)$-flavor equation of state. Results are compared with an ideal quark-gluon plasma and with a hadron-resonance gas to highlight interaction effects. Two cases of primordial lepton asymmetries are analyzed: a symmetric configuration $(\ell_e=\ell_μ=\ell_τ=\ell/3)$ and an asymmetric one $(\ell_e=0,\;\ell_μ=-\ell_τ)$. Increasing $|\ell|$ systematically drives the trajectories toward larger values of $μ_B$ and more negative $μ_Q$. In the asymmetric case, a non-monotonic bounce develops when the $τ$ chemical potential reaches $m_τ$, generating a maximum in $μ_B(T)$, the position of which depends on $\ell_τ$. Assuming a modest $μ_{Q}$-dependence of the lattice-QCD critical end point estimates (obtained at $μ_{Q} = 0$), the trajectories for all lepton asymmetries explored ($|\ell|\lesssim 0.1$) lie to their left, implying that in a standard cosmological scenario the QCD transition is almost certainly a smooth crossover. Nevertheless, we estimate the magnitude of baryon and lepton asymmetries needed to obtain a cosmic trajectory closer to the QCD critical point, providing inputs for future studies of the strong-interaction epoch.
format Preprint
id arxiv_https___arxiv_org_abs_2508_00094
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Cosmic Trajectories calculation with state of the art lattice QCD equation of state
Formaggio, Lorenzo
Di Clemente, Francesco
Yadav, Geetika
Drago, Alessandro
Ratti, Claudia
Cosmology and Nongalactic Astrophysics
High Energy Physics - Phenomenology
High Energy Physics - Theory
We compute the full cosmic trajectories of the early Universe across the QCD phase diagram as the plasma cools from $T\simeq500\,$MeV to $30\,$MeV, assuming $β$-equilibrated matter. The trajectories are obtained by simultaneously solving baryon-number, electric-charge, and lepton-asymmetry conservation, closed by a state-of-the-art lattice-QCD equation of state: a fourth-order Taylor expansion in the chemical potentials that merges the latest $(2\!+\!1)$-flavor susceptibilities with charm-quark contributions, thus delivering a consistent $(2\!+\!1\!+\!1)$-flavor equation of state. Results are compared with an ideal quark-gluon plasma and with a hadron-resonance gas to highlight interaction effects. Two cases of primordial lepton asymmetries are analyzed: a symmetric configuration $(\ell_e=\ell_μ=\ell_τ=\ell/3)$ and an asymmetric one $(\ell_e=0,\;\ell_μ=-\ell_τ)$. Increasing $|\ell|$ systematically drives the trajectories toward larger values of $μ_B$ and more negative $μ_Q$. In the asymmetric case, a non-monotonic bounce develops when the $τ$ chemical potential reaches $m_τ$, generating a maximum in $μ_B(T)$, the position of which depends on $\ell_τ$. Assuming a modest $μ_{Q}$-dependence of the lattice-QCD critical end point estimates (obtained at $μ_{Q} = 0$), the trajectories for all lepton asymmetries explored ($|\ell|\lesssim 0.1$) lie to their left, implying that in a standard cosmological scenario the QCD transition is almost certainly a smooth crossover. Nevertheless, we estimate the magnitude of baryon and lepton asymmetries needed to obtain a cosmic trajectory closer to the QCD critical point, providing inputs for future studies of the strong-interaction epoch.
title Cosmic Trajectories calculation with state of the art lattice QCD equation of state
topic Cosmology and Nongalactic Astrophysics
High Energy Physics - Phenomenology
High Energy Physics - Theory
url https://arxiv.org/abs/2508.00094