English

The Case for Future Hadron Colliders From $B \to K^{(*)} \mu^+ \mu^-$ Decays

High Energy Physics - Phenomenology 2018-04-04 v2 High Energy Physics - Experiment

Abstract

Recent measurements in BK()μ+μB \to K^{(*)} \mu^+ \mu^- decays are somewhat discrepant with Standard Model predictions. They may be harbingers of new physics at an energy scale potentially accessible to direct discovery. We estimate the sensitivity of future hadron colliders to the possible new particles that may be responsible for the anomalies: leptoquarks or ZZ^\primes. We consider luminosity upgrades for a 14 TeV LHC, a 33 TeV LHC, and a 100 TeV pppp collider such as the FCC-hh. Coverage of ZZ^\prime models is excellent: for narrow particles, with perturbative couplings that may explain the bb-decay results for ZZ^\prime masses up to 20 TeV, a 33 TeV 1 ab1^{-1} LHC is expected to cover most of the parameter space up to 8 TeV in mass, whereas the 100 TeV FCC-hh with 10 ab1^{-1} will cover all of it. A smaller portion of the leptoquark parameter space is covered by future colliders: for example, in a μ+μjj\mu^+\mu^-jj di-leptoquark search, a 100 TeV 10 ab1^{-1} collider has a projected sensitivity up to leptoquark masses of 12 TeV (extendable to 21 TeV with a strong coupling for single leptoquark production), whereas leptoquark masses up to 41 TeV may in principle explain the anomalies.

Keywords

Cite

@article{arxiv.1710.06363,
  title  = {The Case for Future Hadron Colliders From $B \to K^{(*)} \mu^+ \mu^-$ Decays},
  author = {B. C. Allanach and Ben Gripaios and Tevong You},
  journal= {arXiv preprint arXiv:1710.06363},
  year   = {2018}
}

Comments

24 pages, 10 figures. v2: Improved discussion and references added, version submitted to JHEP