The Effective Theory of the Light Stop Scenario
Marcela Carena, Germano Nardini, Mariano Quiros, Carlos E.M. Wagner

TL;DR
This paper analyzes the light stop scenario in supersymmetry, calculating the Higgs mass bounds and exploring electroweak baryogenesis viability using one-loop and two-loop effective theories, with implications for collider experiments.
Contribution
It provides a detailed RGE-improved effective theory calculation of the Higgs mass in the light stop scenario, including bounds and phenomenological implications.
Findings
Higgs mass upper bound of about 150 GeV for light stop scenario.
Electroweak baryogenesis compatible with Higgs mass below 129 GeV.
Heavy scalar masses range between 3 TeV and 600 TeV.
Abstract
Electroweak baryogenesis in the minimal supersymmetric extension of the Standard Model may be realized within the light stop scenario, where the right-handed stop mass remains close to the top-quark mass to allow for a sufficiently strong first order electroweak phase transition. All other supersymmetric scalars are much heavier to comply with the present bounds on the Higgs mass and the electron and neutron electric dipole moments. Heavy third generation scalars render it necessary to resum large logarithm contributions to perform a trustable Higgs mass calculation. We have studied the one--loop RGE improved effective theory below the heavy scalar mass scale and obtained reliable values of the Higgs mass. Moreover, assuming a common mass for all heavy scalar particles, and values of all gaugino masses and the Higgsino mass parameter about the weak scale, and imposing gauge…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Computational Physics and Python Applications · Distributed and Parallel Computing Systems
