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Spectroscopic and structural properties of B, $$B_s$$, and $$B_c$$ mesons within a non-relativistic potential model: a comparative analysis via matrix Numerov and variational methods

Pritom Kumar Nath iD, Rishan Dev Choudhury iD, Jugal Lahkar iD

DOI10.1140/epjc/s10052-026-16433-1
PublisherSpringer Science and Business Media LLC
Journal / SourceThe European Physical Journal C
Published2026-10
Metadata Deposited2026-10-08 (updated: 2026-10-08)
Subject—
Languageen
ISSN1434-6044, 1434-6052
Typejournal-article
Volume / Issue / Pages86 / 10 / —
Citations0
References deposited53
Access / license metadataOpen license identified License 1 ↗A reuse license does not by itself establish whether the full text is freely readable.

Abstract

Abstract In this work, we studied the spectroscopic masses, decay constants, oscillation frequencies, and Isgur–Wise function parameters of B , $$B_s$$ B s , and $$B_c$$ B c mesons within the framework of a non-relativistic potential model. The interaction is modelled using the Killingbeck potential, with calculations performed using two complementary approaches: the matrix Numerov method for solving the Schrödinger equation and the quantum mechanical variational method employing the Gaussian wave function. We determined the unknown parameters of the Killingbeck potential by fitting it to the Cornell potential using the ordinary least squares (OLS) method. These calibrated parameters are then used to compute the aforementioned physical observables. We obtained the masses of the heavy mesons with deviations of less than 0.5% from the highly precise experimental data. We also discussed the drawbacks and limitations of the non-relativistic model and highlighted its domain of applicability. At the end, we compare our results obtained from both methods with those from other theoretical frameworks, including QCD sum rules, lattice QCD, and alternative potential model studies.