Role of Time-Varying Magnetic Field on QGP Equation of State

Author:

Kumar Yogesh1ORCID,Jain Poonam2,Bangotra Pargin3,Kumar Vinod4,Singh D. V.5,Rajouria S. K.6

Affiliation:

1. Department of Physics, Hansraj College, University of Delhi, Malka Ganj, North Campus, New Delhi 110007, India

2. Department of Physics, Sri Aurobindo College, University of Delhi, Malviya Nagar, New Delhi 110017, India

3. Department of Physics, Netaji Subhas University of Technology, Dwarka, Delhi, India

4. Department of Physics, University of Lucknow, 226007 Lucknow, U.P., India

5. Department of Physics, GLA University, Mathura, U.P., India

6. Department of Physics, Zakir Husain Delhi College, University of Delhi, Jawaharlal Nehru Marg, New Delhi 110002, India

Abstract

The phase diagram of quantum chromodynamics (QCD) and its associated thermodynamic properties of quark-gluon plasma (QGP) are studied in the presence of time-dependent magnetic field. The study plays a pivotal role in the field of cosmology, astrophysics, and heavy-ion collisions. In order to explore the structure of quark-gluon plasma to deal with the dynamics of quarks and gluons, we investigate the equation of state (EoS) not only in the environment of static magnetic field but also in the presence of time-varying magnetic fields. So, for determining the equation of state of QGP at nonzero magnetic fields, we revisited our earlier model where the effect of time-varying magnetic field was not taken into consideration. Using the phenomenological model, some appealing features are noticed depending upon the three different scales: effective mass of quark, temperature, and time-independent and time-dependent magnetic fields. Earlier the effective mass of quark was incorporated in our calculations, and in the current work, it is modified for static and time-varying magnetic fields. Thermodynamic observables including pressure, energy density, and entropy are calculated for a wide range of temperature- and time-dependent as well as time-independent magnetic fields. Finally, we claim that the EoS are highly affected in the presence of a magnetic field. Our results are notable compared to other approaches and found to be advantageous for the measurement of QGP equation of state. These crucial findings with and without time-varying magnetic field could have phenomenological implications in various sectors of high-energy physics.

Publisher

Hindawi Limited

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