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Deconstructed Hypercharge: A Natural Model of Flavour

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arxiv 2305.16280 v3 pith:U4P7DIO5 submitted 2023-05-25 hep-ph hep-ex

Deconstructed Hypercharge: A Natural Model of Flavour

classification hep-ph hep-ex
keywords flavourmodelgaugescaleelectroweakhiggshyperchargemass
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The flavour puzzle is one of the greatest mysteries in particle physics. A `flavour deconstruction' of the electroweak gauge symmetry, by promoting at least part of it to the product of a third family factor (under which the Higgs is charged) times a light family factor, allows one to address the flavour puzzle at a low scale due to accidentally realised $U(2)^5$ flavour symmetries. The unavoidable consequence is new heavy gauge bosons with direct couplings to the Higgs, threatening the stability of the electroweak scale. In this work, we propose a UV complete model of flavour based on deconstructing only hypercharge. We find that the model satisfies finite naturalness criteria, benefiting from the smallness of the hypercharge gauge coupling in controlling radiative Higgs mass corrections and passing phenomenological bounds. Our setup allows one to begin explaining flavour at the TeV scale, while dynamics solving the large hierarchy problem can lie at a higher scale up to around 10 TeV - without worsening the unavoidable little hierarchy problem. The low-energy phenomenology of the model is dominated by a single $Z'$ gauge boson with chiral and flavour non-universal couplings, with mass as light as a few TeV thanks to the $U(2)^5$ symmetry. The natural parameter space of the model will be probed by the HL-LHC and unavoidably leads to large positive shifts in the $W$-boson mass, as well as an enhancement in $\text{Br}(B_{s,d} \to \mu^+ \mu^-)$. Finally, we show that a future electroweak precision machine such as FCC-ee easily has the reach to fully exclude the model.

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Cited by 5 Pith papers

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  2. Cosmological History of Flavour Deconstruction Models: Constraints from Monopole Production

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    The U(2)_ℓ-breaking spurion δ is constrained to |δ| < 0.051 (95% CL) by R_K(*) and B_s→μμ data, with derived upper limits for LFV τ and B decays.

  4. Generation-separated hypercharges and dark charges: origin of flavor, neutrino masses, and dark matter

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    Generation-separated U(1) hypercharges plus a dark U(1) can generate hierarchical charged-fermion masses, seesaw/scotoseesaw neutrinos, and Z2-stabilized TeV-scale dark matter from one breaking pattern.

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