English

Mass and Force Relations for Extremal E2MD Black Holes

High Energy Physics - Theory 2026-08-05 v1 General Relativity and Quantum Cosmology

Abstract

We study static extremal black holes in Einstein gravity coupled to a dilaton and two Maxwell fields with independent dilaton couplings aa and bb. When b=1/ab=-1/a in four dimensions, a time-symmetric initial-value construction allows us to determine the masses and interaction energies of multi-black-hole configurations. On this special locus, the long-range force between any two extremal black holes vanishes. For arbitrary aa and bb, a constant dilaton-shift symmetry, together with homogeneity and the extremality condition, yields a first-order ordinary differential equation that determines the extremal mass as a function of the two electric charges. This equation allows us to analyze the force between non-identical extremal black holes without having to know the explicit black-hole geometry. In all analytically controlled regimes that we examine, the locus b=1/ab=-1/a separates attractive behavior for b>1/ab>-1/a from repulsive behavior for b<1/ab<-1/a. We extend the analysis to arbitrary spacetime dimensions, where the corresponding force-cancellation condition is ab=2(d2)/(d1)ab=-2(d-2)/(d-1). Finally, we test this sign pattern using the exact A2A_2, B2B_2 and G2G_2 Toda black holes. In the G2G_2 case, a potentially problematic branch is excluded because it contains naked singularities outside the horizon, suggesting an intriguing connection between regularity and the sign of long-range forces.

Cite

@article{arxiv.2608.05280,
  title  = {Mass and Force Relations for Extremal E2MD Black Holes},
  author = {Sera Cremonini and Mirjam Cvetič and Christopher N. Pope and Aritra Saha},
  journal= {arXiv preprint arXiv:2608.05280},
  year   = {2026}
}