Anisotropy of magnetized quark matter

Fuente: arXiv
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Main Authors: Goswami, Kangkan, Sahu, Dushmanta, Dey, Jayanta, Sahoo, Raghunath, Stock, Reinhard
Format: Preprint
Published: 2023
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author Goswami, Kangkan
Sahu, Dushmanta
Dey, Jayanta
Sahoo, Raghunath
Stock, Reinhard
author_facet Goswami, Kangkan
Sahu, Dushmanta
Dey, Jayanta
Sahoo, Raghunath
Stock, Reinhard
contents Strong transient magnetic fields are generated in non-central relativistic heavy-ion collisions. These fields induce anisotropy within the strongly interacting medium that, in principle, can affect the thermodynamic properties of the medium. We use the Polyakov loop extended Nambu Jona-Lasinio model to study the quark matter subjected to an external magnetic field at vanishing baryon chemical potential ($μ_{B}$). We have estimated the degree of anisotropy in the speed of sound and isothermal compressibility within the magnetized quark matter as a function of temperature ($T$) and magnetic field ($eB$). This study helps us to understand the extent of directionality generated in the initial stages of non-central collisions while giving us useful information about the system.
format Preprint
id arxiv_https___arxiv_org_abs_2310_02711
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Anisotropy of magnetized quark matter
Goswami, Kangkan
Sahu, Dushmanta
Dey, Jayanta
Sahoo, Raghunath
Stock, Reinhard
High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Experiment
Nuclear Theory
Strong transient magnetic fields are generated in non-central relativistic heavy-ion collisions. These fields induce anisotropy within the strongly interacting medium that, in principle, can affect the thermodynamic properties of the medium. We use the Polyakov loop extended Nambu Jona-Lasinio model to study the quark matter subjected to an external magnetic field at vanishing baryon chemical potential ($μ_{B}$). We have estimated the degree of anisotropy in the speed of sound and isothermal compressibility within the magnetized quark matter as a function of temperature ($T$) and magnetic field ($eB$). This study helps us to understand the extent of directionality generated in the initial stages of non-central collisions while giving us useful information about the system.
title Anisotropy of magnetized quark matter
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Experiment
Nuclear Theory
url https://arxiv.org/abs/2310.02711