English

Doubly Charmful Baryonic B Decays

High Energy Physics - Phenomenology 2008-11-26 v2 High Energy Physics - Experiment

Abstract

There are two apparent puzzles connected with the two-body and three-body doubly charmed baryonic B decays. First, earlier calculations based on QCD sum rules or the diquark model predict Br(Bˉ0Ξc+Λˉc)Br(Bˉ0\BcNˉ)Br(\bar B^0\to\Xi_c^+\bar\Lambda_c^-)\approx Br(\bar B^0\to\B_c\bar N), while experimentally the former has a rate two orders of magnitude larger than the latter. Second, a naive estimate of the branching ratio 10910^{-9} for the color-suppressed three-body decay BˉΛc+ΛˉcK\bar B\to\Lambda_c^+\bar\Lambda_c^-K, which is highly suppressed by phase space, is too small by five to six orders of magnitude compared to experiment. We show that the great suppression for the Λc+ΛˉcK\Lambda_c^+\bar\Lambda_c^-K production can be alleviated provided that there exists a narrow hidden charm bound state with a mass near the ΛcΛˉc\Lambda_c\bar\Lambda_c threshold. This new state that couples strongly to the charmed baryon pair can be searched for in B decays and in ppˉp\bar p collisions by studying the mass spectrum of D()Dˉ()D^{(*)}\bar D^{(*)} or ΛcΛˉc\Lambda_c\bar\Lambda_c. The doubly charmful decay BˉΞcΛˉc\bar B\to\Xi_c\bar\Lambda_c has a configuration more favorable than the singly charmful one such as Bˉ0Λcpˉ\bar B^0\to\Lambda_c\bar p since no hard gluon is needed to produce the energetic ΞcΛˉc\Xi_c\bar\Lambda_c pair in the former decay, while two hard gluons are needed for the latter process. Assuming that a soft qqˉq\bar q quark pair is produced through the σ\sigma and π\pi meson exchanges in the configuration for BˉΞcΛˉc\bar B\to \Xi_c\bar\Lambda_c, it is found that its branching ratio is of order 10310^{-3}, in agreement with experiment.

Keywords

Cite

@article{arxiv.hep-ph/0512335,
  title  = {Doubly Charmful Baryonic B Decays},
  author = {Hai-Yang Cheng and Chun-Khiang Chua and Shang-Yuu Tsai},
  journal= {arXiv preprint arXiv:hep-ph/0512335},
  year   = {2008}
}

Comments

14 pages, 5 figures, to appear in Phys. Rev. D

R2 v1 2026-07-22T14:06:29.140Z