4.4 Article

Wilson loops in N=4 SO(N) SYM and D-branes in AdS5 x RP5

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 10, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP10(2021)016

Keywords

AdS-CFT Correspondence; D-branes; Matrix Models; Wilson; 't Hooft and Polyakov loops

Funding

  1. US NSF [PHY-1620542, PHY1914860]

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This study focuses on the half-BPS circular Wilson loop in N = 4 super Yang-Mills with an orthogonal gauge group, utilizing supersymmetric localization to compute its expectation value exactly. The research highlights the large N limit and tests the duality with type HB string theory in AdS(5) x RP5, demonstrating precise matching in the strong coupling limit of the Wilson loop expectation value with the classical action of the dual string theory object. Additionally, the D5-brane description is used to determine the leading strong coupling behavior of the bremsstrahlung function associated with a spinor probe charge, showing agreement with localization predictions.
We study the half-BPS circular Wilson loop in N = 4 super Yang-Mills with orthogonal gauge group. By supersymmetric localization, its expectation value can be computed exactly from a matrix integral over the Lie algebra of SO(N). We focus on the large N limit and present some simple quantitative tests of the duality with type HB string theory in AdS(5) x RP5. In particular, we show that the strong coupling limit of the expectation value of the Wilson loop in the spinor representation of the gauge group precisely matches the classical action of the dual string theory object, which is expected to be a D5-brane wrapping a RP4 subspace of RP5. We also briefly discuss the large N, large lambda limits of the SO(N) Wilson loop in the symmetric/antisymmetric representations and their D3/D5-brane duals. Finally, we use the D5-brane description to extract the leading strong coupling behavior of the bremsstrahlung function associated to a spinor probe charge, or equivalently the normalization of the two-point function of the displacement operator on the spinor Wilson loop, and obtain agreement with the localization prediction.

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