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M2 brane in AdS4× S7/ Zk: 2-loop correction to 12-BPS Wilson loop vs localization in ABJM theory

M. Beccaria, S. A. Kurlyand, A. A. Tseytlin, J. van Muiden

hep-tharXiv:2609.14497

Abstract

We study the quantization of an M2 brane wrapping AdS2× S1 inside AdS4× S7/Zk, dual to the 12-BPS circular Wilson loop in ABJM theory. The classical action and the one-loop contribution were previously shown to reproduce the gauge-theory localization result. Here we extend the analysis to the two-loop order. In an adapted static and κ-symmetry gauge the world-volume action contains no cubic interaction vertices, so that the two-loop correction is determined entirely by quartic interactions and is manifestly free of logarithmic UV divergences. We find that the bosonic and fermionic contributions combine into a perfect square X2 where X is a linear combination of the bosonic and fermionic 3d Green's functions and their derivatives. The evaluation of X requires fixing the AdS2 boundary quantization of the massless fermionic modes. With the boundary conditions selected by the preserved supersymmetry, X vanishes and hence the complete two-loop correction is found to be zero. This result would not be consistent with identifying the M2-brane loop expansion directly with the large-N expansion of the canonical, fixed-(N,k) localization prediction. Instead, it agrees precisely with the recent proposal that the semiclassical M2-brane partition function should be matched to the gauge-theory grand-canonical ensemble, in which the Wilson loop expectation value is perturbatively one-loop exact. The vanishing of the two-loop correction thus provides a non-trivial test of this grand-canonical identification.

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