English

Magnetic field-induced anisotropic interaction in heavy quark bound states

High Energy Physics - Phenomenology 2020-04-21 v1 Soft Condensed Matter Strongly Correlated Electrons Nuclear Theory

Abstract

We have investigated how a strong magnetic field (B) could decipher the anisotropic interaction in heavy quark (QQ) and antiquark (Qˉ\bar Q) bound states through the perturbative thermal QCD in real-time formalism. So we thermalize Schwinger propagator for quarks in LLL and the Feynman propagator for gluons to calculate the gluon self-energy. For the quark-loop contribution to the self-energy, the medium does not have any temperature correction and the vacuum term gives rise an anisotropic term whereas the gluon-loop yields temperature correction. This finding in quark-loop contribution corroborates the equivalence of a massless QED in (1+1)-dimension with the massless thermal QCD in strong B, which (quark sector) is reduced to (1+1)-dimension (longitudinal). Thus the permittivity of the medium behaves like as a tensor. Thus the permittivity of medium makes the QQˉQ \bar Q potential anisotropic, which resembles with a contemporary results found in lattice studies. As a result, potential for QQˉQ \bar Q-pairs aligned transverse to B is more attractive than parallel alignment. However, potential is always more attractive compared to B=0 due to softening of screening mass. However, the imaginary-part of potential becomes smaller compared to B=0. We have next investigated the effects of strong B{\bf B} on binding energies (B.E.) and thermal widths (Γ\Gamma) of ground states of ccˉc \bar c and bbˉb \bar b in a time-independent perturbation theory, where binding energies gets increased and widths gets decreased, compared to B=0B =0. Finally we have studied the quasi-free dissociation of bound states in a strong B. The dissociation temperatures estimated for J/ψJ/\psi and Υ\Upsilon states are obtained as 1.59Tc1.59 \rm{T_c} and 2.22Tc2.22 \rm{T_c}, respectively, which are higher than the estimate in B=0 , thus preventing early dissolution of QQˉQ \bar Q bound states.

Keywords

Cite

@article{arxiv.2004.08868,
  title  = {Magnetic field-induced anisotropic interaction in heavy quark bound states},
  author = {Salman Ahamad Khan and Binoy Krishna Patra and Mujeeb Hasan},
  journal= {arXiv preprint arXiv:2004.08868},
  year   = {2020}
}

Comments

26 pages with 4 figures