English

Flavor Physics and CP Violation

High Energy Physics - Phenomenology 2017-10-25 v1 High Energy Physics - Experiment

Abstract

We currently live in the age of the CKM paradigm. The 3×33\times 3 matrix that links (d, s, b)(d,\ s,\ b) quarks to (u, c, t)(u,\ c,\ t) in the charged current weak interaction, being complex and nominally with 18 parameters, can be accounted for by just 3 rotation angles and one CPCP violating (CPV) phase, with unitarity and the CKM phases triumphantly tested at the B factories. But the CKM picture is unsatisfactory and has too many parameters. The main aim of Flavor Physics and CPCP violation (FPCP) studies is the pursuit to uncover New Physics beyond the Standard Model (SM). Two highlights of LHC Run~1 period are the CPV phase ϕs\phi_s of BsB_s mixing and Bsμ+μB_s \to\mu^+\mu^- decay, which were found to be again consistent with SM, though the saga is yet unfinished. We also saw the emergence of the P5P_5' angular variable anomaly in B0K0μ+μB^0 \to K^{*0}\mu^+\mu^- decay and RK()R_{K^{(*)}} anomaly in BK()μ+μB \to K^{(*)}\mu^+\mu^- to BK()e+eB \to K^{(*)}e^+e^- rate ratios, and the BaBar anomaly in BD()τνB \to D^{(*)}\tau\nu decays, which suggest possible New Physics in these flavor processes, pointing to extra ZZ', charged Higgs, or leptoquarks. Charmless hadronic, semileptonic, purely leptonic and radiative BB decays continue to offer various further windows on New Physics. Away from BB physics, the rare KπννK \to \pi\nu\nu decays and ε/ε\varepsilon'/\varepsilon in the kaon sector, μe\mu \to e transitions, muon g2g-2 and electric dipole moments of the neutron and electron, τμγ, μμμ, eee\tau \to \mu\gamma,\ \mu\mu\mu,\ eee, and a few charm physics probes, offer broadband frontier windows on New Physics. (See the document for the full abstract.)

Keywords

Cite

@article{arxiv.1708.03793,
  title  = {Flavor Physics and CP Violation},
  author = {Paoti Chang and Kai-Feng Chen and Wei-Shu Hou},
  journal= {arXiv preprint arXiv:1708.03793},
  year   = {2017}
}

Comments

71 pages, 19 figures, to be published in Progress in Particle and Nuclear Physics

R2 v1 2026-06-22T21:13:10.748Z