English

Muon ${g-2}$ discrepancy within D-brane string compactifications

High Energy Physics - Phenomenology 2021-11-16 v3 High Energy Physics - Theory

Abstract

Very recently, the Muon g2g-2 experiment at Fermilab has confirmed the E821 Brookhaven result, which hinted at a deviation of the muon anomalous magnetic moment from the Standard Model (SM) expectation. The combined results from Brookhaven and Fermilab show a difference with the SM prediction δaμ=(251±59)×1011\delta a_\mu = (251 \pm 59) \times 10^{-11} at a significance of 4.2σ4.2\sigma, strongly indicating the presence of new physics. Motivated by this new result we reexamine the contributions to the muon anomalous magnetic moment from both: (i)~the ubiquitous U(1)U(1) gauge bosons of D-brane string theory constructions and (ii)~the Regge excitations of the string. We show that, for a string scale O(PeV){\cal O} ({\rm PeV}), the contribution from anomalous U(1)U(1) gauge bosons which couple to hadrons could help to reduce (though not fully eliminate) the discrepancy reported by the Muon g2g-2 Collaboration. Consistency with null results from LHC searches of new heavy vector bosons imparts the dominant constraint. We demonstrate that the contribution from Regge excitations is strongly suppressed as it was previously conjectured. We also comment on contributions from Kaluza-Klein (KK) modes, which could help resolve the δaμ\delta a_\mu discrepancy. In particular, we argue that for 4-stack intersecting D-brane models, the KK excitations of the U(1)U(1) boson living on the lepton brane would not couple to hadrons and therefore can evade the LHC bounds while fully bridging the δaμ\delta a_\mu gap observed at Brookhaven and Fermilab.

Keywords

Cite

@article{arxiv.2104.06854,
  title  = {Muon ${g-2}$ discrepancy within D-brane string compactifications},
  author = {Luis A. Anchordoqui and Ignatios Antoniadis and Xing Huang and Dieter Lust and Tomasz R. Taylor},
  journal= {arXiv preprint arXiv:2104.06854},
  year   = {2021}
}

Comments

Matching version to be published in Fortsch. Phys

R2 v1 2026-06-24T01:09:46.734Z