English

Deconfinement phase transition in a magnetic field in 2+1 dimensions from holographic models

High Energy Physics - Theory 2018-03-14 v2 High Energy Physics - Phenomenology

Abstract

Using two different models from holographic quantum chromodynamics (QCD) we study the deconfinement phase transition in 2+12+1 dimensions in the presence of a magnetic field. Working in 2+1 dimensions lead us to {\sl exact} solutions on the magnetic field, in contrast with the case of 3+1 dimensions where the solutions on the magnetic field are perturbative. As our main result we predict a critical magnetic field BcB_c where the deconfinement critical temperature vanishes. For weak fields meaning B<BcB<B_c we find that the critical temperature decreases with increasing magnetic field indicating an inverse magnetic catalysis (IMC). On the other hand, for strong magnetic fields B>BcB>B_c we find that the critical temperature raises with growing field showing a magnetic catalysis (MC). These results for IMC and MC are in agreement with the literature.

Keywords

Cite

@article{arxiv.1709.09258,
  title  = {Deconfinement phase transition in a magnetic field in 2+1 dimensions from holographic models},
  author = {Diego M. Rodrigues and Eduardo Folco Capossoli and Henrique Boschi-Filho},
  journal= {arXiv preprint arXiv:1709.09258},
  year   = {2018}
}

Comments

V.2: 10 pages, 2 figures. Text improved. New references included. Typos corrected. Results unchanged. This version matches the published one in PLB