English

$CP$ violation in two-body hadronic $\Lambda_b$ decays in the PQCD approach

High Energy Physics - Phenomenology 2025-10-20 v2 High Energy Physics - Experiment

Abstract

We systematically investigate the CPCP-averaged branching ratios and CPCP violations (CPVs) for the two-body hadronic decays Λbph\Lambda_b\to ph, where hh runs through the mesons π\pi^-, ρ\rho^-, a1(1260)a_1^-(1260), KK^-, KK^{\ast -}, K1(1270)K_1^-(1270) and K1(1400)K_1^-(1400), in the perturbative QCD approach to order αs2\alpha_s^2 in the strong coupling. Various topological amplitudes are obtained by incorporating subleading-twist hadron distribution amplitudes, which exhibit reasonable hierarchical patterns, sizable strong phases, and non-negligible higher-power corrections. The predicted direct CPVs in Λbpπ,pK\Lambda_b\to p\pi^-,pK^-, different from those in similar BB meson decays, are as small as the current data. The low CPV in Λbpπ\Lambda_b\to p\pi^- results from the cancellation between the SS- and PP-wave CPVs, while the one in ΛbpK\Lambda_b\to pK^- is determined by the tiny SS-wave CPV. However, individual partial-wave CPVs can exceed 10%10\%, consistent with direct CPVs in BB meson decays. The CPVs in the ΛbpK1(1270),pK1(1400)\Lambda_b\to pK_1^-(1270),pK_1^-(1400) channels are relatively larger. In particular, CPVs above 20%20\% appear in the up-down asymmetries associated with the final-state angular distributions of ΛbpK1(1270),pK1(1400)\Lambda_b\to pK_1^-(1270),pK_1^-(1400), followed by the secondary K1KππK_1\to K\pi\pi decays. These observables offer promising prospects for firmly establishing baryon CPVs. The decay asymmetry parameters of Λbph\Lambda_b\to ph are also predicted for future experimental confrontations.

Keywords

Cite

@article{arxiv.2506.07197,
  title  = {$CP$ violation in two-body hadronic $\Lambda_b$ decays in the PQCD approach},
  author = {Jia-Jie Han and Ji-Xin Yu and Ya Li and Hsiang-nan Li and Jian-Peng Wang and Zhen-Jun Xiao and Fu-Sheng Yu},
  journal= {arXiv preprint arXiv:2506.07197},
  year   = {2025}
}

Comments

73 pages, 19 figures, 31 tables, the version published in Phys.Rev.D

R2 v1 2026-07-01T03:05:47.102Z