A light scalar as the messenger of electroweak and flavor symmetry breaking
J.D. Lykken, Z. Murdock, S. Nandi

TL;DR
This paper introduces a new model where a light scalar acts as a messenger for electroweak and flavor symmetry breaking, explaining fermion mass hierarchies and predicting observable phenomena at colliders.
Contribution
It presents a novel framework linking a light scalar to flavor and electroweak symmetry breaking, with implications for Higgs physics and flavor-changing processes.
Findings
Flavor-changing neutral currents are within experimental limits.
Potential signals in D^0 mixing and B_s->mu+mu- near current sensitivities.
The scalar s could be lighter than the Higgs and detectable at colliders.
Abstract
We propose a new framework for understanding the hierarchies of fermion masses and mixings. The masses and mixings of all Standard Model (SM) charged fermions other than top arise from higher dimensional operators involving a messenger scalar S and flavon scalars F_i. The flavons spontaneously break SM flavor symmetries at around the TeV scale. The SM singlet scalar S couples directly to the Higgs H and spontaneously breaks another U(1) at the electroweak scale. At the TeV scale, SM quarks and charged leptons have renormalizable couplings to S, but not to H or F_i. These couplings involve new heavy vectorlike fermions. Integrating out these fermions produces a pattern of higher dimensional operators that reproduce the observed hierarchies of the SM masses and mixings in terms of powers of the "little hierarchy": the ratio of the electroweak scale to the flavor-breaking scale. The…
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