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A matrix-model approach to integrated correlators in a $\mathcal{N}=2$ SYM theory

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arxiv 2311.17178 v2 pith:5O2ERBKF submitted 2023-11-28 hep-th

classification hep-th
keywords integratedcorrelatorsoperatorsmathcaltheoryconstantcoulomb-branchfunctions
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

In a $\mathcal{N}=2$ superconformal gauge theory with matter hypermultiplets transforming in the symmetric and anti-symmetric representations of SU($N$), we study the integrated correlators of two Coulomb-branch operators and two moment-map operators using localization. In the corresponding matrix model we identify the operator associated with the integrated insertions of moment-map operators and provide for it an exact expression valid for all values of the coupling constant in the planar limit. This allows us to study the integrated correlators at strong-coupling where we show that they behave as the 2-point functions of the Coulomb-branch operators, up to an overall constant dependent only on the conformal dimensions of the latter. The strong-coupling relation between integrated correlators and 2-point functions turns out to be the same as in $\mathcal{N}=4$ SYM at large $N$, despite the reduced amount of supersymmetry in our theory.

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  1. More on phase transitions in ${\cal N}$ = 2 massive gauge theories

    hep-th 2025-07 accept novelty 7.0 of 10

    Mass deforming an N=2 superconformal theory with two different masses produces a third-order phase transition at finite 't Hooft coupling.

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