Motivated by the observation of the decay Bˉ→Kˉ∗γ by
CLEO, we have systematically analyzed the two-body weak radiative decays of
bottom and charmed hadrons. There exist two types of weak radiative decays: One
proceeds through the short-distance b→sγ transition and the other
occurs through W-exchange accompanied by a photon emission. Effective
Lagrangians are derived for the W-exchange bremsstrahlung processes at the
quark level and then applied to various weak electromagnetic decays of heavy
hadrons. Predictions for the branching ratios of Bˉ0→D∗0γ,Λb0→Σc0γ,Ξb0→Ξc0γ and
\Xi_b^0\to\xip_c^0\gamma are given. In particular, we found B(Bˉ0→D∗0γ)≈0.9×10−6. Order of magnitude
estimates for the weak radiative decays of charmed hadrons: D0→Kˉ∗0γ,Λc+→Σ+γ and Ξc0→Ξ0γ
are also presented. Within this approach, the decay asymmetry for antitriplet
to antitriplet heavy baryon weak radiative transitions is uniquely predicted by
heavy quark symmetry. The electromagnetic penguin contribution to
Λb0→Λγ is estimated by two different methods and its
branching ratio is found to be of order 1×10−5. We conclude that
weak radiative decays of bottom hadrons are dominated by the short-distance
b→sγ mechanism.Comment: 28 pages + 3 figures (not included), CLNS 94/1278, IP-ASTP-04-94.
[Main changes in this revised version: (i) Sect 2 and subsection 4.1 are
revised, (ii) A MIT bag method for calculating the decay rate of Lambdab→Λ+gamma is presented, (iii) All predictions are updated using the
newly available 1994 Particle Data Group, and (iv) Appendix and subsections
3.3 and 4.4 are deleted.