Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter

Abstract We have studied the effect of strong magnetic field on the charge and thermal transport properties of hot QCD matter at finite chemical potential. For this purpose, we have calculated the electrical conductivity ($$\sigma _\mathrm{el}$$ σel ) and the thermal conductivity ($$\kappa $$ κ ) us...

Full description

Bibliographic Details
Main Authors: Shubhalaxmi Rath, Binoy Krishna Patra
Format: Article
Language:English
Published: SpringerOpen 2020-08-01
Series:European Physical Journal C: Particles and Fields
Online Access:http://link.springer.com/article/10.1140/epjc/s10052-020-8331-x
id doaj-7fdcd30f26b04e2bb1527acce8eecfa7
record_format Article
spelling doaj-7fdcd30f26b04e2bb1527acce8eecfa72020-11-25T03:39:58ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-08-0180811410.1140/epjc/s10052-020-8331-xEffect of magnetic field on the charge and thermal transport properties of hot and dense QCD matterShubhalaxmi Rath0Binoy Krishna Patra1Department of Physics, Indian Institute of Technology RoorkeeDepartment of Physics, Indian Institute of Technology RoorkeeAbstract We have studied the effect of strong magnetic field on the charge and thermal transport properties of hot QCD matter at finite chemical potential. For this purpose, we have calculated the electrical conductivity ($$\sigma _\mathrm{el}$$ σel ) and the thermal conductivity ($$\kappa $$ κ ) using kinetic theory in the relaxation time approximation, where the interactions are subsumed through the distribution functions within the quasiparticle model at finite temperature, strong magnetic field and finite chemical potential. This study helps to understand the impacts of strong magnetic field and chemical potential on the local equilibrium by the Knudsen number ($$\Omega $$ Ω ) through $$\kappa $$ κ and on the relative behavior between thermal conductivity and electrical conductivity through the Lorenz number (L) in the Wiedemann–Franz law. We have observed that, both $$\sigma _\mathrm{el}$$ σel and $$\kappa $$ κ get increased in the presence of strong magnetic field, and the additional presence of chemical potential further increases their magnitudes, where $$\sigma _\mathrm{el}$$ σel shows decreasing trend with the temperature, opposite to its increasing behavior in the isotropic medium, whereas $$\kappa $$ κ increases slowly with the temperature, contrary to its fast increase in the isotropic medium. The variation in $$\kappa $$ κ explains the decrease of the Knudsen number with the increase of the temperature. However, in the presence of strong magnetic field and finite chemical potential, $$\Omega $$ Ω gets enhanced and approaches unity, thus, the system may move slightly away from the equilibrium state. The Lorenz number ($$\kappa /(\sigma _\mathrm{el} T))$$ κ/(σelT)) in the abovementioned regime of strong magnetic field and finite chemical potential shows linear enhancement with the temperature and has smaller magnitude than the isotropic one, thus, it describes the violation of the Wiedemann–Franz law for the hot and dense QCD matter in the presence of a strong magnetic field.http://link.springer.com/article/10.1140/epjc/s10052-020-8331-x
collection DOAJ
language English
format Article
sources DOAJ
author Shubhalaxmi Rath
Binoy Krishna Patra
spellingShingle Shubhalaxmi Rath
Binoy Krishna Patra
Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
European Physical Journal C: Particles and Fields
author_facet Shubhalaxmi Rath
Binoy Krishna Patra
author_sort Shubhalaxmi Rath
title Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
title_short Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
title_full Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
title_fullStr Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
title_full_unstemmed Effect of magnetic field on the charge and thermal transport properties of hot and dense QCD matter
title_sort effect of magnetic field on the charge and thermal transport properties of hot and dense qcd matter
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2020-08-01
description Abstract We have studied the effect of strong magnetic field on the charge and thermal transport properties of hot QCD matter at finite chemical potential. For this purpose, we have calculated the electrical conductivity ($$\sigma _\mathrm{el}$$ σel ) and the thermal conductivity ($$\kappa $$ κ ) using kinetic theory in the relaxation time approximation, where the interactions are subsumed through the distribution functions within the quasiparticle model at finite temperature, strong magnetic field and finite chemical potential. This study helps to understand the impacts of strong magnetic field and chemical potential on the local equilibrium by the Knudsen number ($$\Omega $$ Ω ) through $$\kappa $$ κ and on the relative behavior between thermal conductivity and electrical conductivity through the Lorenz number (L) in the Wiedemann–Franz law. We have observed that, both $$\sigma _\mathrm{el}$$ σel and $$\kappa $$ κ get increased in the presence of strong magnetic field, and the additional presence of chemical potential further increases their magnitudes, where $$\sigma _\mathrm{el}$$ σel shows decreasing trend with the temperature, opposite to its increasing behavior in the isotropic medium, whereas $$\kappa $$ κ increases slowly with the temperature, contrary to its fast increase in the isotropic medium. The variation in $$\kappa $$ κ explains the decrease of the Knudsen number with the increase of the temperature. However, in the presence of strong magnetic field and finite chemical potential, $$\Omega $$ Ω gets enhanced and approaches unity, thus, the system may move slightly away from the equilibrium state. The Lorenz number ($$\kappa /(\sigma _\mathrm{el} T))$$ κ/(σelT)) in the abovementioned regime of strong magnetic field and finite chemical potential shows linear enhancement with the temperature and has smaller magnitude than the isotropic one, thus, it describes the violation of the Wiedemann–Franz law for the hot and dense QCD matter in the presence of a strong magnetic field.
url http://link.springer.com/article/10.1140/epjc/s10052-020-8331-x
work_keys_str_mv AT shubhalaxmirath effectofmagneticfieldonthechargeandthermaltransportpropertiesofhotanddenseqcdmatter
AT binoykrishnapatra effectofmagneticfieldonthechargeandthermaltransportpropertiesofhotanddenseqcdmatter
_version_ 1724537364700725248