SearcharxivSearch

arXiv subjects

Rameshri V. Patel

Publications and source records attributed to Rameshri V. Patel.

3 recordsLinked to original sources

Singly heavy Cascade Baryon $Ξ^0_{c}$ \& $Ξ^-_{b}$ Spectroscopy in the Relativistic Framework of Independent Quark Model

In this work, the potential parameters of the independent quark model are systematically reduced using previously determined inputs from a broad range of baryons. The reduced-parameter formulation, developed within the relativistic Dirac formalism and employing a Martin-like potential, is then applied to the spectroscopy of the singly heavy baryons $Ξ_c^0$ and $Ξ_b^-$. This enables an explicit verification of the linear relation obtained between the potential parameters. Radially and orbitally excited state masses are calculated, and the resulting Regge trajectories are used to assign spin-parity to experimentally observed states. The states $Ξ_c^0(2923)$, $Ξ_c^0(3080)$, $Ξ_c^0(2882)$, and $Ξ_c^0(2970)$ are identified as having $J^P = \tfrac{1}{2}^-$, $\tfrac{3}{2}^+$, $\tfrac{3}{2}^-$, and $\tfrac{1}{2}^+$, respectively, while the observed $Ξ_b^-(6227)$ state is assigned $J^P = \tfrac{5}{2}^+$. To investigate the electromagnetic structure of these baryons, their magnetic moments and radiative decay widths are computed. Additionally, the two-body weak decay branching ratios of $Ξ_c^0$ are evaluated and contrasted with experimental data to assess the robustness of the approach. The two-body nonleptonic decays of $Ξ_b^-$ are also analyzed, providing predictions for branching ratios that may be tested in future experiments. Overall, the results demonstrate the effectiveness of the parameter-reduction procedure and support its applicability in the spectroscopy of baryons.

hep-ph

Singly heavy Omega Baryon ($Ω_c^0$ \& $Ω_b^-$) Spectroscopy in the Relativistic Framework of Independent Quark Model

The Independent Quark Model, formulated for a three-body system within a relativistic framework, is applied to singly heavy baryons \( Ω_c^0 \) and \( Ω_b^- \) to investigate their spectroscopic properties. A Martin-like potential with an equal mixture of scalar and vector components is employed, with potential parameters fitted using ground-state experimental data. The resulting mass spectra include both radial and orbital excitations. The spin-parity for the recently observed states \( Ω_c^0(3000) \), \( Ω_c^0(3050) \), \( Ω_c^0(3067) \), \( Ω_c^0(3120) \), and \( Ω_c^0(3185) \) as well as possible spin assignments for the four newly observed excited states of \( Ω_b^- \) (\(Ω_b^-(6316)\), \(Ω_b^-(6330)\), \(Ω_b^-(6340)\), and \(Ω_b^-(6350)\)) are proposed. The magnetic moments of the ground and first excited states are also calculated, along with radiative decay widths and transition magnetic moments. The non-leptonic weak decays of \( Ω_c^0 \) are analyzed, with decay widths and branching ratios computed and compared with experimental data to validate the predictive power of the model. The branching ratios for the non-leptonic decays of $Ω_b^-$ are also predicted for future observations.

hep-ph

Cascade ($Ξ^0$) Baryon Spectroscopy in the Relativistic Framework of Independent Quark Model

The spectroscopy of $Ξ^0$ is performed within the relativistic framework of independent quark model. The equal mixture of scalar and vector components in the potential having Martin-like form is considered for the confinement. With the suitable potential parameters for $Ξ^0$, mass spectra for high radial and orbital excitation is calculated. The experimentally observed values of ground state magnetic moment, branching ratios and asymmetry parameters for radiative weak decays, $Ξ^{0}\rightarrowΛ^{0} + γ^{0}$ \& $Ξ^{0}\rightarrowΣ^{0} + γ^{0}$ are obtained to validate the model. The spin parity of experimentally known resonances like $Ξ(1530)$, $Ξ(1820)$, \& $Ξ(2030)$ are confirmed through the Regge trajectories in $(J,M^2)$ plane. The spin pa+rity of $Ξ(1950)$, $Ξ(2130)$, \& $Ξ(2250)$ are predicted using those Regge trajectories. The radiative decay width and magnetic moment of first resonance is also predicted.

hep-ph