English

A Note on the WGC, Effective Field Theory and Clockwork within String Theory

High Energy Physics - Theory 2018-04-04 v1 High Energy Physics - Phenomenology

Abstract

It has been recently argued that Higgsing of theories with U(1)nU(1)^n gauge interactions consistent with the Weak Gravity Conjecture (WGC) may lead to effective field theories parametrically violating WGC constraints. The minimal examples typically involve Higgs scalars with a large charge with respect to a U(1)U(1) (e.g. charges (Z,1)(Z,1) in U(1)2U(1)^2 with Z1Z\gg 1). This type of Higgs multiplets play also a key role in clockwork U(1)U(1) theories. We study these issues in the context of heterotic string theory and find that, while indeed there is no new physics at the standard magnetic WGC scale ΛgIRMP\Lambda\sim g_{IR} M_P, the string scale is just slightly above, at a scale kIRΛ\sim \sqrt{k_{IR}}\Lambda. Here kIRk_{IR} is the level of the IR U(1)U(1) worldsheet current. We show that, unlike the standard magnetic cutoff, this bound is insensitive to subsequent Higgsing. One may argue that this constraint gives rise to no bound at the effective field theory level since k0k_0 is model dependent and in general unknown. However there is an additional constraint to be taken into account, which is that the Higgsing scalars with large charge ZZ should be part of the string massless spectrum, which becomes an upper bound kIRk02k_{IR}\leq k_0^2, where k0k_0 is the level of the UV currents. Thus, for fixed k0k_0, ZZ cannot be made parametrically large. The upper bound on the charges ZZ leads to limitations on the size and structure of hierarchies in an iterated U(1)U(1) clockwork mechanism.

Keywords

Cite

@article{arxiv.1709.02392,
  title  = {A Note on the WGC, Effective Field Theory and Clockwork within String Theory},
  author = {Luis E. Ibanez and Miguel Montero},
  journal= {arXiv preprint arXiv:1709.02392},
  year   = {2018}
}

Comments

12 pages

R2 v1 2026-06-22T21:36:24.188Z