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Finite Temperature Quarkonia Spectral Functions in the Pseudoscalar Channel

High Energy Physics - Lattice 2025-03-19 v2 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Quarkonia, the bound states of heavy quark-antiquark pairs, are important tools for studying the quark-gluon plasma (QGP). In this study, we examine the behavior of in-medium quarkonium bound states in the QGP by analyzing their spectral functions at two temperatures, T=220MeVT = 220\,\textrm{MeV} and T=293MeVT = 293\,\textrm{MeV}. We use physics-motivated information to reconstruct the spectral function from the Euclidean lattice correlator. Near the threshold, the spectral function is estimated through a complex potential, determined non-perturbatively from Wilson line correlators. Our results show that the real part of the potential undergoes color screening above TpcT_{pc}, while the imaginary part grows rapidly with increasing distance and temperature. For the ultraviolet (UV) part of the spectral function, we use the perturbative vacuum spectral function, as the temperature effects are suppressed in this region. In the absence of a transport peak in the pseudoscalar channel, we find that this combination effectively describes the pseudoscalar correlator on the lattice, calculated using relativistic quark fields. Our results show that pseudoscalar charmonium (ηc\eta_c) experiences significant thermal effects, as indicated by the broadening of the ηc(1S)\eta_c(1S) state. In contrast, the ηb(1S)\eta_b(1S) state remains intact, with a sharp bound state peak.

Keywords

Cite

@article{arxiv.2412.17570,
  title  = {Finite Temperature Quarkonia Spectral Functions in the Pseudoscalar Channel},
  author = {Dibyendu Bala and Sajid Ali and Olaf Kaczmarek and Pavan},
  journal= {arXiv preprint arXiv:2412.17570},
  year   = {2025}
}

Comments

contribution to EMMI Workshop: "Aspects of Criticality II", 2-4 July 2024, Wroclaw, Poland. v2: Eq. (5) corrected for a missing sin function. Some other typos have been fixed