English

The Electro-Weak Phase Transition at Colliders: Confronting Theoretical Uncertainties and Complementary Channels

High Energy Physics - Phenomenology 2021-08-27 v4 High Energy Physics - Experiment

Abstract

We explore and contrast the capabilities of future colliders to probe the nature of the electro-weak phase transition. We focus on the real singlet scalar field extension of the Standard Model, representing the most minimal, yet most elusive, framework that can enable a strong first-order electro-weak phase transition. By taking into account the theoretical uncertainties and employing the powerful complementarity between gauge and Higgs boson pair channels in the searches for new scalar particles, we find that a 100 TeV proton collider has the potential to confirm or falsify a strong first-order transition. Our results hint towards this occurring relatively early in its lifetime. Furthermore, by extrapolating down to 27 TeV, we find that a lower-energy collider may also probe a large fraction of the parameter space, if not all. Such early discoveries would allow for precise measurements of the new phenomena to be obtained at future colliders and would pave the way to definitively verify whether this is indeed the physical remnant of a scalar field that catalyses a strong first-order transition.

Keywords

Cite

@article{arxiv.2010.00597,
  title  = {The Electro-Weak Phase Transition at Colliders: Confronting Theoretical Uncertainties and Complementary Channels},
  author = {Andreas Papaefstathiou and Graham White},
  journal= {arXiv preprint arXiv:2010.00597},
  year   = {2021}
}

Comments

50 pages, 15 colourful figures, 8 informative appendices. Published. Latest version contains upgraded smearing algorithm for jets

R2 v1 2026-06-23T18:56:44.481Z