Multi-step Strong First-Order Electroweak Phase Transitions in the Inverted Type-I 2HDM: Parameter Space, Gravitational Waves, and Collider Phenomenology
Soojin Lee, Dongjoo Kim, Jin-Hwan Cho, Jinheung Kim, and Jeonghyeon Song

TL;DR
This paper explores the parameter space of the inverted Type-I 2HDM, identifying conditions for strong first-order electroweak phase transitions, analyzing gravitational wave signals, and proposing collider signatures for potential discovery.
Contribution
It provides a comprehensive analysis of multi-step strong first-order EWPTs in the inverted Type-I 2HDM, including gravitational wave predictions and collider phenomenology, which were not previously detailed.
Findings
Two-step SFOEWPTs are as frequent as one-step transitions.
Detectable gravitational wave signals mainly come from two-step transitions.
Collider signatures include promising channels like $e^+ e^- o H^+ H^- o W^+ W^- hh$.
Abstract
We investigate the electroweak phase transition (EWPT) within the inverted Type-I two-Higgs-doublet model, where the observed Higgs boson is identified as the heavier \textit{CP}-even scalar . Through a comprehensive parameter-space scan consistent with current theoretical and experimental constraints, we identify regions supporting strong first-order EWPTs (SFOEWPTs), including multi-step transitions. We find that two-step SFOEWPTs occur as frequently as one-step transitions, while three-step transitions can occur, albeit rarely. Crucially, the parameter spaces inducing one-step and two-step transitions are partially yet significantly separated: one-step transitions restrict the charged Higgs mass and to and , whereas two-step transitions allow and…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Computational Physics and Python Applications · Neutrino Physics Research
