A symmetry-guided phenomenological model organizes leading current-current operators for charged-current decays of heavy-light mesons and reproduces heavy-quark scaling relations for decay constants and form factors.
Title resolution pending
4 Pith papers cite this work. Polarity classification is still indexing.
citation-role summary
citation-polarity summary
verdicts
UNVERDICTED 4roles
background 2polarities
background 2representative citing papers
A quantum framework for heavy-quark spin evolution in heavy-ion collisions yields analytic polarization solutions, fitted to ALICE D*+ data to extract depolarization strength and estimate Lambda_c polarization plus elliptic harmonics.
Within HQET, radiative semileptonic decay form factors for Lambda(b) to Lambda(c) and B to D(*) transitions are fully determined by non-radiative Isgur-Wise functions and heavy-hadron magnetic dipole moments in soft and sub-leading soft regions.
Lattice QCD study tracks the T_cc tetraquark pole trajectory with quark mass variation using diquark, molecular, and scattering operators at two spacings.
citing papers explorer
-
A Phenomenological Model of Mesons for Charged Current Weak Decays
A symmetry-guided phenomenological model organizes leading current-current operators for charged-current decays of heavy-light mesons and reproduces heavy-quark scaling relations for decay constants and form factors.
-
Quantum spin dynamics of heavy quarks and polarization observables in relativistic heavy-ion collisions
A quantum framework for heavy-quark spin evolution in heavy-ion collisions yields analytic polarization solutions, fitted to ALICE D*+ data to extract depolarization strength and estimate Lambda_c polarization plus elliptic harmonics.
-
Radiative Semileptonic Decays of Beautiful Hadrons
Within HQET, radiative semileptonic decay form factors for Lambda(b) to Lambda(c) and B to D(*) transitions are fully determined by non-radiative Isgur-Wise functions and heavy-hadron magnetic dipole moments in soft and sub-leading soft regions.
-
$T_{cc}$ pole trajectory
Lattice QCD study tracks the T_cc tetraquark pole trajectory with quark mass variation using diquark, molecular, and scattering operators at two spacings.