English

Temperature dependent Nucleon Mass and entropy bound inequality

Nuclear Theory 2007-05-23 v1

Abstract

Mass of a baryon as a function of temperature is calculated using colour-singlet partition function for massless quarks (with two flavours) and abelian gluons confined in a bag with a temperature dependent bag pressure constant B(T)B(T). The non-perturbative aspect of QCD interaction is included through colour-singlet restriction on quark-gluon partition function in a phenomenological way. The entropy bound inequality S/E  2πR/c S/E \ \leq \ 2\pi R/\hbar c , where S, ES, \ E and RR are entropy, energy and radius, respectively of the enclosed system with c = 197.331\hbar c \ = \ 197.331 MeVfm, is found to be consistent with the equilibrium solutions of the baryon mass upto a temperature TET_E. There is a region of temperature TE<T<TCT_E < T < T_C (TCT_C is critical temperature for quark-gluon plasma formation) in which no admissible equilibrium states exist for the bag. We say that the system expriences a phase jump from hadron to quark-gluon plasma through thermodynamic non-equlibrium processes.

Keywords

Cite

@article{arxiv.nucl-th/9505041,
  title  = {Temperature dependent Nucleon Mass and entropy bound inequality},
  author = {M. G. Mustafa and A. Ansari},
  journal= {arXiv preprint arXiv:nucl-th/9505041},
  year   = {2007}
}

Comments

Latex file(3 figures obtainable from first author)

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