Gravity-Induced Photon Interactions and Infrared Consistency in any Dimensions
Abstract
We compute the four-photon () operators generated by loops of charged particles of spin , , in the presence of gravity and in any spacetime dimension . To this end, we expand the one-loop effective action via the heat kernel coefficients, which capture both the gravity-induced renormalization of the operators and the low-energy Einstein-Maxwell effective field theory (EFT) produced by massive charged particles. We set positivity bounds on the operators using standard arguments from extremal black holes (for ) and from infrared (IR) consistency of four-photon scattering (for ). We find that both approaches yield nearly equivalent results, even though in the amplitudes we discard the graviton -channel pole and use the vanishing of the Gauss-Bonnet term at quadratic order for any . The positivity bounds constrain the charge-to-mass ratio of the heavy particles. If the Planckian operators are sufficiently small or negative, such bounds produce a version of the -dimensional Weak Gravity Conjecture (WGC) in most, but not all, dimensions. In the special case of , the gravity-induced beta functions of operators from charged particles of any spin are positive, leading to WGC-like bounds with a logarithmic enhancement. In , the WGC fails to guarantee extremal black hole decay in the infrared EFT, thereby requiring the existence of sufficiently large Planckian operators.
Cite
@article{arxiv.2404.07254,
title = {Gravity-Induced Photon Interactions and Infrared Consistency in any Dimensions},
author = {Pedro Bittar and Sylvain Fichet and Lucas de Souza},
journal= {arXiv preprint arXiv:2404.07254},
year = {2025}
}
Comments
52 pages, 5 figures, v3: Matches PRD version. Text expanded, presentation of results improved, technical content moved to appendices, conclusions slightly refined