N $$ \mathcal{N} $$ = 4 Super-Yang-Mills correlators at strong coupling from string theory and localization

Abstract We compute 1/λ corrections to the four-point functions of half-BPS operators in SU(N) N $$ \mathcal{N} $$ = 4 super-Yang-Mills theory at large N and large ’t Hooft coupling λ = g YM 2 N $$ {g}_{\mathrm{YM}}^2N $$ using two methods. Firstly, we relate integrals of these correlators to deriva...

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Bibliographic Details
Main Authors: Damon J. Binder, Shai M. Chester, Silviu S. Pufu, Yifan Wang
Format: Article
Language:English
Published: SpringerOpen 2019-12-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP12(2019)119
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Summary:Abstract We compute 1/λ corrections to the four-point functions of half-BPS operators in SU(N) N $$ \mathcal{N} $$ = 4 super-Yang-Mills theory at large N and large ’t Hooft coupling λ = g YM 2 N $$ {g}_{\mathrm{YM}}^2N $$ using two methods. Firstly, we relate integrals of these correlators to derivatives of the mass deformed S 4 free energy, which was computed at leading order in large N and to all orders in 1/λ using supersymmetric localization. Secondly, we use AdS/CFT to relate these 1/λ corrections to higher derivative corrections to supergravity for scattering amplitudes of Kaluza-Klein scalars in IIB string theory on AdS5 × S 5, which in the flat space limit are known from worldsheet calculations. These two methods match at the order corresponding to the tree level R 4 interaction in string theory, which provides a precise check of AdS/CFT beyond supergravity, and allow us to derive the holographic correlators to tree level D 4 R 4 order. Combined with constraints from [1], our results can be used to derive CFT data to one-loop D 4 R 4 order. Finally, we use AdS/CFT to fix these correlators in the limit where N is taken to be large while gYM is kept fixed. In this limit, we present a conjecture for the small mass limit of the S 4 partition function that includes all instanton corrections and is written in terms of the same Eisenstein series that appear in the study of string theory scattering amplitudes.
ISSN:1029-8479