Hot and Dense Medium Effects on the Bs* and B* Multiplets
K. Azizi, N. Er, J. Y. Süngü
Abstract
We present an extensive analysis of the in-medium masses and decay constants of the Bs*(5415) and B*(5325) multiplets, including both particles and antiparticles, using QCD sum rules at finite temperature and density. The OPE incorporates the full temperature- and density-dependent contributions from the quark, gluon, and mixed condensates. Computing the strange (Bs*0, Bs*0), charged (B*), and neutral (B*0, B*0) doublet properties allows us to study the effects of flavor symmetry breaking, strangeness, and heavy-quark decoupling on the beauty vector mesons in the medium. Our results indicate that the mass is remarkably resistant to the medium across the entire multiplet: no state loses more than 13\% of its vacuum value, even at T = Tc and n = 5n0, the extreme conditions explored here. The decay constant is far more sensitive, losing up to 78\% at the same point. Baryon density clearly dominates the medium response, while temperature plays a secondary role until the system approaches the deconfinement crossover. At zero density, every state loses almost the same fraction of its mass and decay constant: mass shifts lie between -(0.5-1.1)\% and decay-constant shifts between -(3.9-5.3)\%, regardless of charge or flavor, so temperature alone does not distinguish a particle from its antiparticle. At finite baryon density, a clear particle-antiparticle asymmetry emerges: at T = 0 and n = 5n0, the B*0 mass decreases by 12.9\%, whereas the B*0 mass shifts by only 6.1\%, a gap of nearly seven percentage points driven entirely by the vector self-energy. This provides a theoretical basis for the future heavy-ion collision program at RHIC, LHC, FAIR, and NICA.
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