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N=4{\cal N}=4 supersymmetric Yang-Mills thermodynamics to order λ2λ^2

Published 5 May 2021 in hep-th, hep-ph, and nucl-th | (2105.02101v3)

Abstract: We calculate the resummed perturbative free energy of N=4{\cal N}=4 supersymmetric Yang-Mills in four spacetime dimensions (SYM<em>4,4\text{SYM}<em>{4,4}) through second order in the 't Hooft coupling λ\lambda at finite temperature and zero chemical potential. Our final result is ultraviolet finite and all infrared divergences generated at three-loop level are canceled by summing over SYM</em>4,4\text{SYM}</em>{4,4} ring diagrams. Non-analytic terms at O(λ<sup>3/2)</sup>{\cal O}({\lambda}<sup>{3/2})</sup> and O(λ<sup>2</sup>logλ) {\cal O}({\lambda}<sup>2</sup> \log\lambda ) are generated by dressing the A0A_0 and scalar propagators. The gauge-field Debye mass mDm_D and the scalar thermal mass MM are determined from their corresponding finite-temperature self-energies. Based on this, we obtain the three-loop thermodynamic functions of SYM4,4\text{SYM}_{4,4} to O(λ<sup>2){\cal O}(\lambda<sup>2). We compare our final result with prior results obtained in the weak- and strong-coupling limits and construct a generalized Pad\'{e} approximant that interpolates between the weak-coupling result and the large-NcN_c strong-coupling result. Our results suggest that the O(λ<sup>2){\cal O}(\lambda<sup>2) weak-coupling result for the scaled entropy density is a quantitatively reliable approximation to the scaled entropy density for 0λ20 \leq \lambda \lesssim 2.

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