On the exponentially small corrections to ${\cal N} = 2$ superconformal correlators at large R-charge
Abstract
In this note we consider Coulomb-branch chiral primary correlation functions in superconformal QCD with gauge group , in the limit of large R-charge for the chiral primary operators with the inverse gauge coupling held fixed. In previous work, these correlation functions were determined to all orders in , up to unknown exponentially small corrections. In this paper we determine the first several orders of the asymptotic expansion of the exponentially small correction itself. To do this we use: the physical interpretation of the exponentially small correction as the virtual propagation of a massive BPS particle, to fix the leading term in the expansion; the supersymmetric recursion relations to derive differential equations for the coupling-dependence of the subleading terms; and the double-scaling limit, to fix undetermined coefficients in the solution of the differential equation. We calculate the expansion of the exponentially small term up to and including relative order . We also use the recursion relations to calculate the subleading large- corrections to the exponentially small correction in the double-scaling limit, up to and including relative order at fixed double-scaled coupling . We compare the expansion to exact results from supersymmetric localization at the coupling , up to . At values , we find the fixed-coupling and double-scaled large-R-charge expansions are accurate to within one part in and , respectively, of the size of the exponentially small correction itself. Relative to the full correlator including the dominant EFT contribution, these estimates give results accuracte to one part in and , respectively.
Keywords
Cite
@article{arxiv.2103.09312,
title = {On the exponentially small corrections to ${\cal N} = 2$ superconformal correlators at large R-charge},
author = {Simeon Hellerman},
journal= {arXiv preprint arXiv:2103.09312},
year = {2021}
}
Comments
87 pages, 4 figures, 2 photographs