Power-aligned 2HDM: a correlative perspective on $(g-2)_{e,\mu}$
Abstract
With the hypothesis of minimal flavor violation, we find that there exists a power-aligned relation between the Yukawa couplings of the two scalar doublets in the two-Higgs-doublet model with Hermitian Yukawa matrices. Within such a power-aligned framework, it is found that a simultaneous explanation of the anomalies observed in the electron and muon anomalous magnetic moments can be reached with TeV-scale quasi-degenerate Higgs masses, and the resulting parameter space is also phenomenologically safer under the B-physics, and decay data, as well as the current LHC bounds. Furthermore, the flavor-universal power that enhances the charged-lepton Yukawa couplings prompts an interesting correlation between the two anomalies, which makes the model distinguishable from the (generalized) linearly aligned and the lepton-specific two-Higgs-doublet models that address the same anomalies but in a non-correlative manner, and hence testable by future precise measurements.
Cite
@article{arxiv.2010.02799,
title = {Power-aligned 2HDM: a correlative perspective on $(g-2)_{e,\mu}$},
author = {Shao-Ping Li and Xin-Qiang Li and Yuan-Yuan Li and Ya-Dong Yang and Xin Zhang},
journal= {arXiv preprint arXiv:2010.02799},
year = {2021}
}
Comments
v1: 23 pages, 2 figures; v2: more discussions and references added, final version published in the journal; v3: figure 2 updated by including the latest Fermilab Muon g-2 result, and the lower bound on the charged-Higgs mass changed from 1.4TeV to 1.7TeV, conclusion unchanged