Approximate mass spectra of the heavy mesons under a Coulomb plus logarithmic spin-dependent potential function
E. Omugbe, E. P Inyang, K. Adegoke, E. M. Khokha

TL;DR
This paper develops an analytical perturbation theory approach to model the mass spectra of heavy mesons using a Coulomb plus logarithmic potential, achieving high accuracy in reproducing experimental data.
Contribution
It introduces a novel analytical method for calculating heavy meson spectra with improved accuracy over previous models, validated by comparison with numerical solutions.
Findings
Achieved 0.24% average deviation for bottomonium masses.
Achieved 1.65% average deviation for charmonium masses.
Validated the approach with numerical solutions, confirming reliability.
Abstract
In this paper, we presented an approximate analytical treatment of the Coulomb plus logarithmic potential using perturbation theory to investigate the mass spectra of bottomonium and charmonium mesons for the low-order quantum states. The derived energy equation, to first-order corrections, was employed to model the free potential parameters through fitting to experimental data of the Particle Data Group. The proposed potential successfully reproduces asymptotic freedom at short distances through one-gluon exchange interactions and quark confinement at large distances, which are the essential features of the strong interactions in Quantum chromodynamics theory. The calculated bottomonium masses exhibited excellent agreement with experimental values, yielding an absolute percentage average deviation (APAD) of 0.24%, which improves upon several previously reported theoretical results.…
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