Testing the muon g-2 anomaly at the LHC

被引:0
作者
A. Freitas
J. Lykken
S. Kell
S. Westhoff
机构
[1] University of Pittsburgh,PITTsburgh Particle
[2] Theoretical Physics Department,physics Astro
[3] Fermilab,physics & Cosmology Center (PITT
来源
Journal of High Energy Physics | / 2014卷
关键词
Beyond Standard Model; Gauge Symmetry;
D O I
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摘要
The long-standing difference between the experimental measurement and the standard-model prediction for the muon’s anomalous magnetic moment, aμ = (gμ − 2)/2, may be explained by the presence of new weakly interacting particles with masses of a few 100 GeV. Particles of this kind can generally be directly produced at the LHC, and thus they may already be constrained by existing data. In this work, we investigate this connection between aμ and the LHC in a model-independent approach, by introducing one or two new fields beyond the standard model with spin and weak isospin up to one. For each case, we identify the preferred parameter space for explaining the discrepancy of aμ and derive bounds using data from LEP and the 8 TeV LHC run. Furthermore, we estimate how these limits could be improved with the 14 TeV LHC. We find that the 8 TeV results already rule out a subset of our simplified models, while almost all viable scenarios can be tested conclusively with 14 TeV data.
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  • [1] Beringer J(2012)Review of particle physics (RPP) Phys. Rev. D 86 010001-undefined
  • [2] Bennett GW(2006)821 Phys. Rev. D 73 072003-undefined
  • [3] Jegerlehner F(2009) − 2 Phys. Rept. 477 1-undefined
  • [4] Nyffeler A(2012) − 2 Frascati Phys. Ser. 56 195-undefined
  • [5] Venanzoni G(2012) − 2 AIP Conf. Proc. 1467 45-undefined
  • [6] Saito N(2011) − 2 Eur. Phys. J. C 71 1515-undefined
  • [7] Davier M(2011)( J. Phys. G 38 085003-undefined
  • [8] Hoecker A(2013) − 2) Eur. Phys. J. C 73 2453-undefined
  • [9] Malaescu B(2001) − 2 Phys. Lett. B 513 119-undefined
  • [10] Zhang Z(2007)The muon anomalous magnetic moment and a new light gauge boson Phys. Rev. D 75 115017-undefined