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arXiv:2510.22870·v4·High Energy Physics — Phenomenology

Mass and Decay-Constant Evolution of Heavy Quarkonia and States from Thermal QCD Sum Rules

Enis Yazici🇩🇪

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Abstract

We analyze the thermal behavior of heavy vector and axial-vector mesons (, , and ) within the finite-temperature QCD sum-rule framework. Using updated PDG-2024 quark masses, modern lattice-informed gluon condensates, and a temperature-dependent continuum threshold constrained by vacuum stability, we compute the evolution of the masses and decay constants up to . At the sum rules are calibrated to reproduce the experimental and LHCb masses and reference decay constants within the expected accuracy of a leading-order phenomenological analysis. The subsequent finite-temperature evolution should therefore be interpreted as a calibrated model prediction within this framework rather than as a fully parameter-free determination. Near the critical temperature, the relative suppression follows a clear hierarchy , consistent with their binding energies and lattice spectral trends. The predicted -- splitting for the system, , is consistent with the LHCb observation of orbitally excited states. The results provide a coherent finite-temperature baseline for future extensions including radiative, higher-dimensional, and width effects.

Comments: 11 pages, 3 figures