English

Hadronic D decays involving even-parity light mesons

High Energy Physics - Phenomenology 2010-05-12 v2 High Energy Physics - Experiment

Abstract

We study the hadronic D meson decays into a pseudoscalar meson PP and an even-parity meson MM, where MM represents a scalar meson SS, an axial-vector meson AA, or a tensor meson TT. These decays are first analyzed in the flavor-diagram approach. Fits to the SPSP modes with SS being a non-strange scalar meson show that neither the simple qqˉq\bar q picture nor the q2qˉ2q^2\bar q^2 scheme is favored by data. Current measurements on the APAP decays are insufficient for a meaningful analysis. Some TPTP data are inconsistent with the others. In certain cases, the WW-annihilation diagrams indicated by the data are unexpectedly large. As a comparison, we also compute their decay rates in the factorization approach using form factors extracted from the covariant light-front model. We find that factorization works well for Cabibbo-allowed D+SP,APD^+ \to SP,AP decays free of the weak annihilation contributions (WW-exchange or WW-annihilation). For the other SPSP and APAP modes, it is necessary to include weak annihilation contributions to account for the data. However, factoriztion fails for DTPD\to TP decays for some unknown reason; the predicted rates are in general too small by at least two orders of magnitude compared to experiment. We also examine the finite width effects of resonances. Some decay modes which are kinematically forbidden become physically allowed due to the finite width of the resonance. We show that the branching fraction of D+σπ+D^+\to\sigma\pi^+ extracted from three-body decays is enhanced by a factor of 2, whereas \B(D0f2(1270)\ovK0)\B(D^0\to f_2(1270)\ov K^0) is reduced by a factor of 4 by finite width effects.

Keywords

Cite

@article{arxiv.1002.2466,
  title  = {Hadronic D decays involving even-parity light mesons},
  author = {Hai-Yang Cheng and Cheng-Wei Chiang},
  journal= {arXiv preprint arXiv:1002.2466},
  year   = {2010}
}

Comments

30 pages; add a new section VII and several references. To appear in PRD

R2 v1 2026-06-21T14:46:17.438Z