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arXiv · hep-ph/9408294

E2 Strength in the Radiative Charmed Baryon Decay

Abstract

The radiative decay $Σ_Q^* \rightarrow Λ_Qγ$ can have both magnetic dipole (M1) and electric quadrupole (E2) components. In the heavy quark limit $M_Q\rightarrow\infty$ the transition arises from the spin of the light degrees of freedom changing from $s_l=1$ to $s_l=0$ and hence the E2 contribution vanishes. We compute the leading contribution to the E2 strength in chiral perturbation theory and find that the amplitude is enhanced by a small energy denominator in the chiral limit. This enhancement essentially compensates for the $1/M_c$ suppression that is present in the charm system. We find a mixing ratio of order a few percent dependent upon the $Σ_c^*--Σ_c$ spin symmetry breaking mass difference. The analogous quantity in the b-baryon sector is smaller by a factor of $\sim M_c/M_b$.

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BibTeXRIS

Martin J. Savage. 1994-08-15. E2 Strength in the Radiative Charmed Baryon Decay. https://doi.org/10.1016/0370-2693(94)01597-6

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