Quarkonium in a thermal BIon
Alireza Sepehri, Richard Pincak, Michal Hnati\v{c}, Farook Rahaman,, Anirudh Pradhan

TL;DR
This paper proposes a novel theoretical framework using Broad Lie-N-Algebra to model quarkonium behavior in a thermal BIon, explaining confinement and deconfinement phenomena through wormhole interactions and entropy effects.
Contribution
It introduces BLNA theory as a broader approach to unify fermions and bosons, applying it to quarkonium in a thermal BIon to explain confinement and deconfinement.
Findings
Confinement potential depends on quark separation and temperature.
Entropy increase leads to quark-antiquark separation and deconfinement.
Model aligns with experimental QCD predictions.
Abstract
In the present article, the authors intend to propose a new theory which potentially allows the propagation of the formation and the evolution of quarkonium in a thermal BIon. When quarks are close to each other, quarkonium behaves like a scalar and by their getting away, it transits to a fermionic system. In order to analyze this particular behaviour, a new outlook approach needs to be adopted as the concurrent view is found deficient to analyse the aforesaid behaviour. Therefore, the authors' post deliberation accept the fermions and fermionic being cognate. We need to accept a theory that the origin of fermions and bosons be the same. However, in -theory, these particles are independent and for this reason, \textbf{we use a new broader theory based on Lie--Algebra and we call it BLNA (Broad Lie--Algebra)} theory. Thus, the BLNA in a way the -theory with dimensions.…
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