English

CP Violation in the $B_s^0$ system

High Energy Physics - Phenomenology 2019-09-09 v2 High Energy Physics - Experiment

Abstract

We review experimental and theoretical aspects of CP violation in the Bs0B_s^0-system. In that respect we present updates for the mixing parameters of the Bs0B_s^0 mesons expected in the Standard Model (SM): the mass difference ΔMsSM=(18.3±2.7)\Delta M_s^{\rm SM} = (18.3 \pm 2.7) ps1^{-1}, the decay rate difference ΔΓsSM=(0.085±0.015)\Delta \Gamma_s^{\rm SM} = (0.085 \pm 0.015) ps1^{-1}, the flavour specific CP asymmetry afss,SM=(2.22±0.27)105a_{\rm fs}^{s, \rm SM} = (2.22 \pm 0.27) \cdot 10^{-5} and the equivalent quantities in the B0B^0-sector. The experimental measurements of ΔMs\Delta M_s and ΔΓs\Delta \Gamma_s are more precise and agree very well with theoretica predictions, which can also be viewed as a proof of theoretical tools, like the Heavy Quark Expansion (HQE). CP violating studies in the Bs0B_s^0 system provide essential information to test the SM expectations. Mixing quantities can be used to study model independent bounds on new physics (NP) effects, yielding the familiar picture: the standard model (SM) gives the dominant contribution, while there is still some sizable space for NP effects. In the case of ΔMs\Delta M_s effects of the order of 15%15\% are not excluded. In the CP phase ϕs\phi_s due to CP violation in the interference of decays and mixing O(100%){\cal O} (100 \%) effects are still possible. The semi-leptonic CP asymmetry aslsa_{\rm sl}^s, which is due to CP violation in mixing, could still be a factor of 250 larger than its robust SM expectation and thus provides a very clean observable for NP searches. We comment in detail on theoretical improvements that are necessary to make full use of the experimental precision.

Keywords

Cite

@article{arxiv.1511.09466,
  title  = {CP Violation in the $B_s^0$ system},
  author = {Marina Artuso and Guennadi Borissov and Alexander Lenz},
  journal= {arXiv preprint arXiv:1511.09466},
  year   = {2019}
}

Comments

51 pages, 30 figures, to appear in Reviews of Modern Physics; v2 matches journal version plus corrected typo in Eq. 48

R2 v1 2026-06-22T11:57:53.896Z