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arXiv:2609.09120·v1·High Energy Physics — Phenomenology

Complex Scalar Dark Matter with a Vector-Like Quark and Lepton: Precision, Flavor, and HL-LHC

Lipika Kolay · Rusa Mandal · Manimala Mitra · Dipankar Pradhan · Subham Saha

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Abstract

We investigate a minimal extension of the SM consisting of a -stabilized complex scalar dark matter (CSDM) candidate, a down-type vector-like quark (VLQ), and a charged vector-like lepton (VLL). The additional vector-like fermions not only enable the CSDM to reproduce the observed relic abundance beyond the Higgs-resonance region through semi-annihilation and co-annihilation processes, but also induce correlated signatures across flavor, electroweak precision, dark matter, and collider observables. We perform a comprehensive one-loop analysis of neutral meson mixing, rare meson decays, charged lepton flavor violation, anomalous magnetic moments of charged leptons, and -pole observables. We find that neutral meson mixing and rare meson decays provide the dominant constraints on the VLQ sector, while charged lepton flavor-violating processes strongly restrict the VLL Yukawa couplings. Current direct-detection limits require Higgs-DM coupling and the VLQ Yukawa coupling for TeV-scale VLQ masses, whereas present indirect-detection searches impose no additional constraints. Combining all flavor, electroweak precision, dark matter, and collider constraints, we identify viable parameter regions with CSDM masses above approximately and VLQ masses above about . We also find that the LHC can exclude VLQs (VLLs) with masses up to approximately TeV, depending on the CSDM mass, at the confidence level. The HL-LHC can further probe an extended region of the parameter space, with discovery prospects at the level. Finally, we demonstrate the complementarity of flavor, dark matter, and collider searches in probing this framework.

Comments: 77 pages, 28 figures