Heavy quark potential in a static and strong homogeneous magnetic field

Abstract We have investigated the properties of quarkonia in a thermal QCD medium in the background of strong magnetic field. For that purpose, we employ the Schwinger proper-time quark propagator in the lowest Landau level to calculate the one-loop gluon self-energy, which in the sequel gives the e...

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Main Authors: Mujeeb Hasan, Bhaswar Chatterjee, Binoy Krishna Patra
Format: Article
Language:English
Published: SpringerOpen 2017-11-01
Series:European Physical Journal C: Particles and Fields
Online Access:http://link.springer.com/article/10.1140/epjc/s10052-017-5346-z
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spelling doaj-dd404b51ef3840caa66a56f8f83ee2762020-11-25T00:39:34ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522017-11-01771111210.1140/epjc/s10052-017-5346-zHeavy quark potential in a static and strong homogeneous magnetic fieldMujeeb Hasan0Bhaswar Chatterjee1Binoy Krishna Patra2Department of Physics, Indian Institute of Technology RoorkeeDepartment of Physics, Indian Institute of Technology RoorkeeDepartment of Physics, Indian Institute of Technology RoorkeeAbstract We have investigated the properties of quarkonia in a thermal QCD medium in the background of strong magnetic field. For that purpose, we employ the Schwinger proper-time quark propagator in the lowest Landau level to calculate the one-loop gluon self-energy, which in the sequel gives the effective gluon propagator. As an artifact of strong magnetic field approximation ( $$eB>>T^2$$ e B > > T 2 and $$eB>>m^2$$ e B > > m 2 ), the Debye mass for massless flavors is found to depend only on the magnetic field which is the dominant scale in comparison to the scales prevalent in the thermal medium. However, for physical quark masses, it depends on both magnetic field and temperature in a low temperature and high magnetic field but the temperature dependence is very meager and becomes independent of the temperature beyond a certain temperature and magnetic field. With the above mentioned ingredients, the potential between heavy quark (Q) and anti-quark ( $$\bar{Q}$$ Q ¯ ) is obtained in a hot QCD medium in the presence of a strong magnetic field by correcting both short- and long-range components of the potential in the real-time formalism. It is found that the long-range part of the quarkonium potential is affected much more by magnetic field as compared to the short-range part. This observation facilitates us to estimate the magnetic field beyond which the potential will be too weak to bind $$Q\bar{Q}$$ Q Q ¯ together. For example, the $$J/\psi $$ J / ψ is dissociated at $$eB \sim $$ e B ∼ 10 $$m_\pi ^2$$ m π 2 and $$\Upsilon $$ Υ is dissociated at $$eB \sim $$ e B ∼ 100 $$m_\pi ^2$$ m π 2 whereas its excited states, $$\psi ^\prime $$ ψ ′ and $$\Upsilon ^\prime $$ Υ ′ are dissociated at smaller magnetic field $$eB= m_\pi ^2$$ e B = m π 2 , $$13 m_\pi ^2$$ 13 m π 2 , respectively.http://link.springer.com/article/10.1140/epjc/s10052-017-5346-z
collection DOAJ
language English
format Article
sources DOAJ
author Mujeeb Hasan
Bhaswar Chatterjee
Binoy Krishna Patra
spellingShingle Mujeeb Hasan
Bhaswar Chatterjee
Binoy Krishna Patra
Heavy quark potential in a static and strong homogeneous magnetic field
European Physical Journal C: Particles and Fields
author_facet Mujeeb Hasan
Bhaswar Chatterjee
Binoy Krishna Patra
author_sort Mujeeb Hasan
title Heavy quark potential in a static and strong homogeneous magnetic field
title_short Heavy quark potential in a static and strong homogeneous magnetic field
title_full Heavy quark potential in a static and strong homogeneous magnetic field
title_fullStr Heavy quark potential in a static and strong homogeneous magnetic field
title_full_unstemmed Heavy quark potential in a static and strong homogeneous magnetic field
title_sort heavy quark potential in a static and strong homogeneous magnetic field
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2017-11-01
description Abstract We have investigated the properties of quarkonia in a thermal QCD medium in the background of strong magnetic field. For that purpose, we employ the Schwinger proper-time quark propagator in the lowest Landau level to calculate the one-loop gluon self-energy, which in the sequel gives the effective gluon propagator. As an artifact of strong magnetic field approximation ( $$eB>>T^2$$ e B > > T 2 and $$eB>>m^2$$ e B > > m 2 ), the Debye mass for massless flavors is found to depend only on the magnetic field which is the dominant scale in comparison to the scales prevalent in the thermal medium. However, for physical quark masses, it depends on both magnetic field and temperature in a low temperature and high magnetic field but the temperature dependence is very meager and becomes independent of the temperature beyond a certain temperature and magnetic field. With the above mentioned ingredients, the potential between heavy quark (Q) and anti-quark ( $$\bar{Q}$$ Q ¯ ) is obtained in a hot QCD medium in the presence of a strong magnetic field by correcting both short- and long-range components of the potential in the real-time formalism. It is found that the long-range part of the quarkonium potential is affected much more by magnetic field as compared to the short-range part. This observation facilitates us to estimate the magnetic field beyond which the potential will be too weak to bind $$Q\bar{Q}$$ Q Q ¯ together. For example, the $$J/\psi $$ J / ψ is dissociated at $$eB \sim $$ e B ∼ 10 $$m_\pi ^2$$ m π 2 and $$\Upsilon $$ Υ is dissociated at $$eB \sim $$ e B ∼ 100 $$m_\pi ^2$$ m π 2 whereas its excited states, $$\psi ^\prime $$ ψ ′ and $$\Upsilon ^\prime $$ Υ ′ are dissociated at smaller magnetic field $$eB= m_\pi ^2$$ e B = m π 2 , $$13 m_\pi ^2$$ 13 m π 2 , respectively.
url http://link.springer.com/article/10.1140/epjc/s10052-017-5346-z
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AT bhaswarchatterjee heavyquarkpotentialinastaticandstronghomogeneousmagneticfield
AT binoykrishnapatra heavyquarkpotentialinastaticandstronghomogeneousmagneticfield
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