English

Charmless Hadronic Two-body Decays of B_u and B_d Mesons

High Energy Physics - Phenomenology 2016-08-25 v2 High Energy Physics - Experiment

Abstract

Two-body charmless nonleptonic decays of B_u and B_d mesons are studied within the framework of generalized factorization in which the effective Wilson coefficients cieffc^{eff}_i are renormalization-scale and -scheme independent while factorization is applied to the tree-level hadronic matrix elements. Contrary to previous studies, our cieffc_i^{eff} do not suffer from gauge and infrared problems. Nonfactorizable effects are parametrized in terms of N_c(LL) and N_c(LR), the effective numbers of colors arising from (V-A)(V-A) and (V-A)(V+A) four-quark operators, respectively. Tree and penguin transitions are classified into six different classes. The data of Bρ0πB^-\to\rho^0\pi^- and BϕKB^-\to\phi K^- clearly indicate that Nc(LR)Nc(LL)N_c(LR)\neq N_c(LL): The first measurement of the b -> u mode Bρ0πB^-\to\rho^0\pi^- and the experimental information on the tree-dominated mode BωπB^-\to\omega\pi^- all imply that Nc(LL) is less than 3, whereas the CLEO measurement of BϕKB^-\to\phi K^- shows Nc(LR)>3. For given input parameters, the prediction of B(BηK){\cal B}(B\to\eta' K) is largely improved by setting Nc(LL)~2 and Nc(LR)>Nc(LL); in particular, the charm content of the eta' contributes in the right direction. The decay rate of BϕKB\to\phi K^* is very sensitive to the form-factor ratio A_2/A_1; the absence of BϕKB\to\phi K events does not necessarily invalidate the factorization approach. If the branching ratio of BωKB^-\to\omega K^- is experimentally found to be significantly larger than that of Bρ0KB^-\to\rho^0 K^-, we argue that inelastic final-state rescattering may account for the disparity between ωK\omega K^- and ρ0K\rho^0 K^-.

Keywords

Cite

@article{arxiv.hep-ph/9903453,
  title  = {Charmless Hadronic Two-body Decays of B_u and B_d Mesons},
  author = {Yaw-Hwang Chen and Hai-Yang Cheng and B. Tseng and Kwei-Chou Yang},
  journal= {arXiv preprint arXiv:hep-ph/9903453},
  year   = {2016}
}

Comments

72 pages, 14 figures. Data are updated; new discussions are added to sec.2. To appear in Phys. Rev